Next Article in Journal
Experimental and Simulation Studies on Stable Polarity Reversal in Aged HVDC Mass-Impregnated Cables
Previous Article in Journal
Influence of High-Frequency Operation on the Efficiency of a PMSM Drive with SiC-MOSFET Inverter
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Review

Heat Transfer Enhancements Assessment in Hot Water Generation with Phase Change Materials (PCMs): A Review

by
Diana Isabel Berrocal
1,2,
Juan Blandon Rodriguez
1,2,*,
Maria De Los Angeles Ortega Del Rosario
1,2,3,4,
Itamar Harris
1,5 and
Arthur M. James Rivas
1,3
1
Research Group—Iniciativa de Integración de Tecnologías para el Desarrollo de Soluciones Ingenieriles (I2TEDSI), Faculty of Mechanical Engineering, Universidad Tecnológica de Panamá, El Dorado, Panama City 0819-07289, Panama
2
Research Group in Design, Manufacturing and Materials (DM+M), Faculty of Mechanical Engineering, Universidad Tecnológica de Panamá, Panama City 0819-07289, Panama
3
Sistema Nacional de Investigación (SNI), Clayton, City of Knowledge Edf. 205, Panama City 0816-02852, Panama
4
Centro de Estudios Multidisciplinarios en Ciencias, Ingeniería y Tecnología (CEMCIT-AIP), Panama City 0819-07289, Panama
5
Department of Mechanical and Materials Engineering, Worcester Polytechnic Institute, Worcester, MA 01609-2280, USA
*
Author to whom correspondence should be addressed.
Energies 2024, 17(10), 2350; https://doi.org/10.3390/en17102350
Submission received: 31 March 2024 / Revised: 5 May 2024 / Accepted: 10 May 2024 / Published: 13 May 2024
(This article belongs to the Section J: Thermal Management)

Abstract

:
The utilization of phase change materials (PCMs) in solar water heating systems (SWHS) has undergone notable advancements, driven by a rising demand for systems delivering superior performance and efficiency. Extensive research suggests that enhancing heat transfer (HTE) in storage systems is crucial for achieving these improvements. This review employs a bibliometric analysis to track the evolution of HTE methods within this field. While current literature underscores the necessity for further exploration into hot water generation applications, several methodologies exhibit significant promise. Particularly, strategies such as fins, encapsulation, and porous media emerge as prominent HTE techniques, alongside nanofluids, which hold the potential for augmenting solar water heating systems. This review also identifies numerous unexplored techniques awaiting investigation, aiming to pave new paths in research and application within the field of hot water generation. It highlights methods that could be used independently or alongside predominantly used techniques.

1. Introduction

The escalating effects of climate change and expanding populations fuel a greater need for building energy. This underscores the urgency of transitioning to cleaner energy sources to diminish dependence on fossil fuels, especially for vital requirements like heating water. Solar energy offers a sustainable solution to decrease conventional energy consumption, cut costs, and mitigate greenhouse gas emissions [1,2,3]. Despite the promising strides in solar energy applications, challenges persist, including intermittency, lower thermal efficiency compared to conventional sources, and temporal imbalances [4]. Addressing these hurdles requires tapping into the energy storage capabilities of specific materials to guarantee availability when required [5].
The literature discusses various heat storage methods: latent heat thermal storage (LHTS), sensible heat thermal storage (SHTS), and thermochemical heat thermal storage (THTS). LHTS involves a phase change of a material within a specified temperature range to store and release energy for tailored thermal applications. SHTS stores thermal energy in a material, maintaining its physical state, with energy correlated to temperature, quantity, and specific heat changes. THTS employs reversible physicochemical reactions for thermal energy storage (TES) and release [6,7]. Compared with SHTS, LHTS can be smaller, which is a significant advantage for use in domestic or residential areas [8,9,10]. It also allows energy to be recovered at a constant temperature [11]. Furthermore, several authors [6,12,13,14,15] have shown that integrating both SHTS and LHTS can reduce costs, enhance efficiency, minimize temperature drops, improve heat transfer, and decrease storage space requirements.
Over the years, significant advancements have been made in LHTS, especially with the integration of solar energy, which has proven highly effective in providing clean energy for various applications [16,17,18,19]. LHTS can employ phase change materials (PCMs), which absorb and release energy during phase transitions. These PCMs are categorized into three types: solid–liquid, solid–gas, and liquid–gas. Solid–liquid PCMs, particularly organic PCMs like paraffin, are most commonly used for hot water generation due to their suitability for low-temperature applications [10,20,21,22]. Organic PCMs (paraffins and fatty acids) exhibit extended operating lifespans, enduring thousands of freeze/melt cycles [23,24,25]. Paraffins, in particular, can maintain their functionality for up to 30 years without degradation [26,27]. For hot water generation, PCMs with a melting temperature range of 50 to 60 °C are recommended to ensure optimal efficiency and performance [28]. The application of PCMs in water heating has been documented since 2003, experiencing a notable increase in research and implementation between 2018 and 2022 [29,30].
PCMs provide significant benefits, including a high energy storage capacity, decreased corrosion, and thermal stability [8,31,32,33], making them highly suitable for hot water generation systems (HWGS). Such systems experience enhanced efficiency and prolonged operational periods [34,35]. At present, there are patents for TES [36], SWHS [37], and also for integrating PCM into aforementioned systems [38,39,40]. SWHS typically comprises three key components: the solar collector, storage tank (optional in some systems), and heat transfer fluid (HTF—with good thermal conductivity) [41]. HTF serves as a medium for energy transfer in heat exchange systems, whether PCM is employed or not [42,43]. Typically used in hot water generation, HTF, such as water [44], facilitates human consumption in various applications [45]. PCMs demonstrate efficient heat transfer during their molten phase, primarily facilitated by natural convection. However, as they solidify, due to their low thermal conductivity, a reduced heat transfer and performance between the PCM and the HTF is shown [3,46]. Consequently, charging and discharging times are prolonged, and the energy storage and release capacity of PCMs are reduced [22,33,47,48]. Lastly, convective boundary conditions in heat transfer occur due to forced convection from/to the HTF, allowing energy release or absorption [33]. Researchers have developed various techniques to enhance the heat transfer system between PCM and HTF in TES systems [22,49]. These include improving PCM properties, optimizing collector design for better heat transfer, enhancing HTF, and incorporating larger surfaces [13,50,51,52,53].
Harris et al. [16] emphasize that improving heat transfer in water solar heaters (WSH) with PCM presents a promising avenue for research, supported by numerous studies confirming its efficacy in achieving system autonomy. Furthermore, the authors suggest expanding this research to encompass investigations into diverse climatic conditions, economic implications, and health considerations related to heat transfer enhancements (HTEs) or PCMs. A growing body of research is dedicated to finding innovative ways to store more energy in less time using PCMs alongside other materials and techniques like nanoparticles and fins [54,55,56,57]. Some of these HTEs involve integrating various methods to enhance efficiency and storage capacity while reducing the duration of charging and discharging periods [12,22] or using PCM encapsulation to increase the stratification capacity of a TES tank and have hot water available for longer. This is achieved as the temperature difference between the HTF and PCM increases [58]. There are various patents on HTE, including encapsulation [59], porous media [60], coils [61], and nanoparticles [62]. This research exclusively concentrates on the advancements in LHTS and explores potential enhancements that can be implemented in this type of storage.
This paper presents a comprehensive review and bibliometric analysis of HTEs applicable to HWGS using PCMs or other HTFs. Previous literature reviews have demonstrated significant progress in various HTE methods across different applications, including those relevant to this study. However, this new review offers a more focused approach, highlighting the most commonly used techniques and those with potential for future research in this field. As such, our analysis categorizes advancements into three primary groups, active, passive, and hybrid methods employing PCMs, while also exploring the use of nanofluids in solar collectors as an innovative heat storage solution. The main objective is to chart a course for HTEs that have seen widespread use or potential for future application in HWGS incorporating PCMs. Figure 1 illustrates the structural framework of this review article.

2. Methodology

This article employs bibliometric analysis, using the Scopus scientific database as its primary methodology. The search was conducted until December 2023 to identify leading countries and influential institutions that have significantly contributed to this topic. Initially, the focus was on advancements in heat transfer using PCMs for energy storage. Consequently, the initial search was conducted using the keyword “heat transfer enhancement” without any year or document type restrictions, resulting in 33,489 documents. To refine the search, two specific keywords, “Domestic hot water” and “Phase Change Material*” were added to narrow down the search to more relevant articles. The asterisk (*) within the word facilitated our incorporation of the terms “Phase Change Material” and “Phase Change Materials”. This refined approach ultimately led to the identification of 262 pertinent articles. Additionally, an exclusion criterion was implemented, specifically targeting documents detailing methods of heat transfer enhancement (HTE) applicable to domestic or residential hot water generation. Figure 2 visually represents the proposed methodology, which will be employed in the subsequent sections.

3. Bibliometric Analysis

Following the methodology outlined in Figure 2, the search resulted in 130 final documents, forming the basis for the bibliometric analysis. In the initial analysis phase, research trends were analyzed over the years to create a comprehensive overview.

3.1. Keyword Analysis

The co-occurrence of keywords in the documents was explored using VOSviewer software, version 1.6.18. Figure 3 illustrates the frequency of keyword appearances, drawn from a pool of 466 keywords. Only those mentioned at least five times were included in the mapping, culminating in 24 distinct keywords. Notably, terms such as ‘Phase Change Materials’, ‘heat storage’, ‘heat transfer’, ‘thermal conductivity’, and ‘heat transfer enhancement’ attracted attention are illustrated by larger circles in Figure 3, indicating their frequent recurrence in the studied documents.
As illustrated in Figure 3, the interrelationships among keywords delineate a comprehensive network, suggesting that each keyword is intricately connected to others identified in the study. Furthermore, it is notable that terms such as ‘Phase Change Materials’ and ‘heat transfer enhancement’ exhibit frequent associations with concepts such as ‘fin’, ‘solar energy’, ‘solar water heaters’, ‘latent heat thermal energy storage’, and ‘solar heating’.

3.2. Growth Trend of Documents on the Topic

Figure 4 depicts the number of documents indexed in Scopus regarding the topic, offering a glimpse into the progression of this topic over time. This figure reveals a significant uptick in research and publications in the last three years (2021 to 2023). This notable surge implies a growing interest in the topic, potentially driven by advancements in PCMs for heat transfer applications, hot water generation, and building efficiency.

3.3. Number of Publications per Country

To investigate the global influence of the topic under investigation, a mapping was conducted using the VOSviewer program (version 1.6.18), identifying contributions from 47 countries. Figure 5 showcases India in the lead with 38 documents, followed by China with 34, and Iran with 17, underscoring their substantial research output. The nations’ populations may contribute to their prominent positions in publication volume within this domain [63]. Furthermore, VOSviewer’s analysis delves into the collaborative relationships between countries, as evidenced by their joint research efforts. A notable partnership between India and the United Kingdom is depicted by a sky-blue thicker line in Figure 5, symbolizing their robust research collaboration. Additionally, the United Kingdom leads in the number of citations with 2953, followed by China with 2476, and India with 1614, indicating the widespread global impact and recognition of their scientific contributions.

3.4. Global Research Institutions Specializing in Heat Transfer Enhancement for LHTS

The analysis aimed to identify institutions distinguished for their prolific output or trending productivity in publications. Consequently, a total of 334 entities were delineated, both in higher education institutions and research organizations. Noteworthy entities leading the list with a minimum of three publications include the Department of Refrigeration and Cryogenic Engineering at Xi’an Jiaotong University in China, the Department of Mechanical Engineering at Babol Noshirvani University of Technology in Iran, and the Center for Advanced Studies in Energy (USP-CAS-E) at the National University of Sciences and Technology (NUST) in the U.S.–Pakistan collaboration. This investigation underscores the pivotal role of academic institutions in driving research within this domain.

3.5. Journals with More Documents

Table 1 shows the scientific journal articles that the authors used to disseminate their research findings. Initially, 64 journals were identified through the analysis, but the table has been refined to feature only those with at least two publications. Notably, the ‘Journal of Energy Storage’ emerges as the leading publication venue for articles on the topic, based on author contributions. Furthermore, the analysis indicates a prevalent focus on engineering and energy across most journals. Additional thematic areas encompass environmental science, materials science, and social sciences, especially in research that intersects sustainability with implementing HTEs in systems.
After conducting the bibliometric analysis, it was possible to examine bibliometric data from documents identified as relevant according to the applied methodology. The techniques from various methods for enhancing heat transfer, as used in the field of potable hot water generation, are analyzed based on the works of other authors, as illustrated in Figure 1.

4. Heat Transfer Enhancements (HTEs) in Hot Water Generation Systems (HWGS)

The literature describes various methods to enhance heat transfer in HWGS. These enhancements may involve modifications to the properties of the PCM [64] and alterations to the generation system itself [65]. Figure 6 illustrates various techniques for enhancing heat transfer in LHTS systems based on the conducted study. Other authors classify these techniques based on enhancements in thermal conductivity (such as carbon materials, nanoparticles, metal foams, and graphite foams), enhancements in heat transfer efficiency through convection (related to geometry), and optimization of the structure of phase change devices (including fins, heat pipes, geometric configuration, and materials) [20,28,66,67]. In addition to the methods and classifications detailed above, various other techniques exist, including bubble agitation, metal rings, multitubes, carbon brushes, metal matrix, graphite flakes, module beam, polypropylene flat panel, and compact flat panel. These methods enhance heat transfer and find application across diverse contexts [68].
Furthermore, an unconventional technique involving microorganisms has been identified [69]. However, this approach is considered somewhat inappropriate due to its association with water intended for human consumption, posing potential health risks. Nevertheless, integrating it with other techniques to develop a safe heat storage system without contaminating the water remains a subject for further exploration.
In order to implement these enhancements in HWGS employing PCM, a wide range of PCM options must be considered, as this selection significantly influences the effectiveness of the heat storage system. Therefore, the primary properties to be evaluated during this selection process include the temperature range, density, thermal conductivity, specific heat capacity, cost, and latent heat of fusion. Various approaches have been used to customize the selection of materials according to specific requirements. These approaches encompass multi-criteria decision-making methods (MCDM), such as the Analytic Hierarchy Process (AHP), TOPSIS (Technique for Order Performance by Similarity to Ideal Solution), COPRAS (Complex Proportional Assessment), VIKOR (Vise Kriterijumska Optimizacija Kompromisno Resenje), and others, serving as methodologies for material selection [3,5,70]. When choosing a PCM, volume variation is another crucial criterion, as it can significantly impact system efficiency. The PCM needs to exhibit minimal volume changes [35,68,71,72]. While organic PCMs are often suggested for their potential to minimize volume changes [12,20,67,73], thorough verification is necessary to ensure future operational integrity. In examining the volume variation of PCMs across different HTE techniques, only a limited number of studies were discovered that illustrate PCM volume changes as per the employed methodology. These studies indicate the following:
  • PCM volume fluctuations during a phase change can potentially harm composite PCMs (Graphite + PCM), yet they do not impair the heat transfer surface of the system during solidification/melting cycles [74].
  • To mitigate pressure drops resulting from PCM volume changes, leaving a void space within the tubes to accommodate PCM volume fluctuations is essential. Typically, only 90% of the evacuated tube solar collector’s tube is filled for this purpose [75].
  • When employing porous media, ensuring sufficient impregnation of PCM within the foam facilitates the filling of empty pores during PCM volume alterations. This safeguards the TES capacity from being compromised [12,66,76].
  • PCM encapsulation can mitigate volume changes resulting from phase transitions. Macroencapsulation, in particular, is employed to increase the heat transfer area, thus offsetting PCM volume changes [44].
  • Holes in PCM capsules can act as buffers for PCM volume expansion, typically used in spherical encapsulation designs [20,77].
  • Due to PCM volume changes, high stresses occur in the annular fins after a certain number of cycles. However, further research is needed on fluid–structure interaction in TES systems with annular fins [71].
The subsequent subsections explore the methods that have been used or have the potential to be employed in hot water generation, whether within storage tanks, shell-and-tube TES units, solar collectors, or other relevant systems. These methods were selected based on the articles reviewed in the bibliometric analysis.

4.1. Passive Methods

Passive methods are extensively embraced due to their reliance on surface modifications rather than external sources, resulting in simpler experimental development. These methods are cost-effective compared to active approaches and provide versatility for many applications [69]. Below, various techniques identified in the analysis of the selected articles are outlined.

4.1.1. Fins

Fins represent a common method for enhancing the thermal conductivity heat transfer coefficient and achieving a faster solidification process in heat exchangers [78,79]. Their popularity stems from their simplicity, ease of manufacture, and cost-effectiveness [80]. Fins are typically extended on the PCM rather than the HTF side to enhance efficiency [42]. Fins facilitate heat transfer within these systems, and increasing their number and size can significantly enhance system performance [43,81,82]. This assertion is supported by studies such as Hosseine et al. [83], which propose that fin length is a critical parameter capable of augmenting absorbed energy and reducing melting temperatures. Additionally, Kalbasi and Salimbur [84] observe that a greater number of fins can lead to a more uniform temperature distribution, optimizing the time required to reach peak temperature. Khan et al. [85] corroborate these findings. Conversely, Al-Abidi et al. [49] suggest that fin thickness, length, number, and the geometry of PCM units in Triplex Tube Heat Exchangers (TTHX), as well as TTHX material and Stefan number, are pivotal parameters for hastening PCM fusion. Tavakoli et al. [86] and Mao et al. [87] indicate that various geometric parameters can influence the PCM melting time, along with the TES model in which the fins are situated. However, Dinker et al. [10] note that reducing the fusion time may inversely impact the overall system efficiency. Therefore, it is imperative to consider various parameters such as inlet temperature, shape, and HTF flow rate during the charging period to mitigate PCM melting time [88,89].
Fins can be manufactured in various shapes, including flat rectangular fins, rod-shaped fins, and other irregular configurations, as illustrated in Figure 7. Research conducted by Zhang et al. [71] indicates that longitudinal and annular fins have acquired the most attention in the past decade. However, helical and topologically optimized fins (depicted in Figure 7d) demonstrate exceptional potential due to their superior performance compared to traditional fins. This observation suggests that fins can be further improved using various active and passive techniques for HTE.
Hosseini and Rahimi [90] highlight in their research that the position and size of rectangular fins can significantly influence heat transfer distribution within energy storage systems. So, to have a shorter melting time of the PCM, one must consider these parameters in rectangular fins and possibly in other configurations. Amagour et al. [91] present a three-dimensional numerical study of a fin-tube heat exchanger to assess HTE performance. The findings indicate that increasing the HTF (water) flow rate reduces both charging and discharging times. Conversely, elevating the HTF temperature accelerates the melting process by up to 30% when there is a 10 °C temperature difference between the HTF and the PCM; however, this also prolongs the solidification process.
Moreover, augmenting the number of fins decreases the heat transfer time and enhances the energy storage capacity. Nonetheless, the study suggests an upper limit to the number of fins for effective enhancement. Additionally, the authors recommend positioning the fins in the middle of the heat exchanger, increasing fin thickness, and using copper material, as these measures reduce the total melting time. In another study, Amagour et al. [92] indicate that a minimum of 8 h of hot water is required for residential construction. Conversely, Chow and Lyu [27] propose a minimum requirement of 18 h (from 7:00 am to 12:00 am) for residential applications.
Figure 7. Different shapes of fins: (a) branch-shaped fins [78] (CC by 4.0); (b) annular fins [43] (CC by 4.0); (c) rectangular fins [93] (Copyright © 2013 Elsevier Ltd.); (d) twisted fins [94] (Copyright © 2013 Elsevier Ltd.); (e) different fins of various researchers [95] (CC by 4.0).
Figure 7. Different shapes of fins: (a) branch-shaped fins [78] (CC by 4.0); (b) annular fins [43] (CC by 4.0); (c) rectangular fins [93] (Copyright © 2013 Elsevier Ltd.); (d) twisted fins [94] (Copyright © 2013 Elsevier Ltd.); (e) different fins of various researchers [95] (CC by 4.0).
Energies 17 02350 g007aEnergies 17 02350 g007b
Moreover, using copper strips shows promising potential for conduction HTE, thereby reducing melting time by 16% [96]. Authors conducting numerical simulations employ various methods to analyze fins in heat storage systems, including the Finite Volume and Enthalpy-Porosity methods [94]. Table 2 summarizes selected research studies employing fins as an HTE technique.
The literature review underscores the widespread utilization of rectangular fins for HTE across various applications. Their simplicity in design and low manufacturing complexity renders them highly favored. The findings of these studies highlight a significant potential for improving heat transfer in LHTESS. Notably, the methodology employed revealed a paucity of studies addressing the real-world application of hot water, with most being either numerical or laboratory-scale investigations. Consequently, a research gap exists regarding both simple and complex-shaped fins’ ability to enhance heat transfer in these systems. In addition to numerical analyses, experimental studies are imperative to validate the efficacy of this technique in HWGS. The outcomes of these studies underscore the pivotal role of the number of fins in LHTESS. While some studies suggest a progressive improvement in heat transfer efficiency with an increased number of fins, others indicate that this relationship has a finite range beyond which further enhancement ceases. Therefore, it is crucial to corroborate this information, as only numerical data are available on this aspect (see Figure 8). Moreover, investigating the use of various fin shapes in LHTESS is essential, as it can explain which of the shapes studied in the literature yield superior results.

4.1.2. Turbulators

Turbulators represent passive methods characterized by spiral inserts elevating fluid velocity within tubes. Turbulators use discs, twisted tapes, wire coils, and others. Turbulators look like fins but differ in their twisted geometry [104]. Typically composed of carbon steel, stainless steel, or copper, turbulators promote HTE and increase flow turbulence [105,106]. Research indicates that this method of heat enhancement surpasses the efficacy of using simple-shaped tubes in SWHS [107]. The subsequent section outlines selected studies from the literature pertaining to this topic.
Twisted tapes and turbulators can potentially increase heat transfer and performance, contingent upon the type of solar collector employed. Nevertheless, this passive technique exhibits somewhat restricted applicability in hot water generation or solar collectors [108,109]. Jaisankar et al. [110] undertook a study to investigate the impact of heat transfer from a collector enhanced with a helically twisted tape. Their findings revealed that using a helically twisted tape can elevate the heat transfer rate, pressure drop, and thermal efficiency by enhancing the tape’s solar radiation and twist ratio.
Li et al. [94] conducted a similar study, only that they are called twisted fins or helical fins since these are located outside the tube through which the HTF (water) passes. In their numerical investigation, they examined the application of shell-and-tube-based heat storage with twisted fins to enhance the performance of this storage type. Their study encompassed various configurations of twisted fins, ranging from 0 to 4 fins positioned around the base tube, and was conducted in two orientations: vertical and horizontal. Their findings indicate that the configuration featuring three twisted fins enhances the melting time of the PCM in the vertical orientation, while in the horizontal orientation, the configuration with two twisted fins yielded the most favorable melting time. Consequently, the authors concluded that increasing the number of twisted fins does not necessarily correspond to a performance enhancement.
Not all researchers confirm the efficacy of turbulator-based enhancement methods. For instance, Hobbi et al. [111] explored the influence of various passive devices (including twisted strips, coil-spring wires, and conical ridges) on a flat plate solar collector. Their findings suggest that these turbulence enhancement techniques fail to significantly increase heat transfer, as evidenced by the absence of discernible differences in the heat flow to the fluid.
The use of turbulators in LHTESS remains limited. Nevertheless, considering their association with fins, it represents an area warranting further investigation and expansion. The literature review reveals divergent viewpoints regarding the effectiveness of turbulators, which may stem from variations in methodology, collector size, or experimental setups adopted by researchers. The studies identified in this review primarily focused on systems employing tubes or solar collectors, as turbulators are commonly deployed to augment fluid velocity within the tubes. Notably, no explicit investigations were found about using coils in storage tanks. This presents a research opportunity to enhance HTF velocity within the coils, potentially improving the melting efficiency.

4.1.3. Porous Media (PM) or Foams

PCMs represent a promising avenue for enhancing energy efficiency and sustainability within systems. Researchers have explored various methodologies to augment thermal conductivity, among which the utilization of PM or metal foams stands out. These materials are favored for their robust, highly conductive, and permeable structures. The literature reveals a diversity of models, materials, pore densities, and porosities employed in fabricating foams or PM. However, the efficacy of this technique is compromised by the inherent natural convection of the material [12,44]. Moreover, numerous numerical methods are available for modeling this technique, with the Lattice Boltzmann method emerging as the most prevalent [112,113]. Alternatively, Habibishandiz et al. [69] demonstrate several models capable of simulating velocity within the PM, including the Darcy model, Darcy–Forchheimer (DF) model, Darcy–Brinkman (DB) model, and Darcy–Brinkman–Forchheimer (DBF) model.
Majdi et al. [114] indicate that incorporating PM within a tank can significantly extend the thermal storage duration compared to systems lacking such media. Furthermore, the thermal conductivity of PCMs can be substantially augmented through metallic foams, with copper foam exhibiting a 44-fold increase and aluminum foam exhibiting a remarkable 218-fold increase when configured with 89% and 71% porosities, respectively. Additionally, employing the impregnation method proves beneficial in minimizing empty pores within the PCM, thereby mitigating undesired thermal resistance [76]. It is important to acknowledge that these enhancements may vary based on several factors inherent to the system; nonetheless, experimental investigations have demonstrated HTEs of up to 400% [115,116]. Conversely, Zhang et al. [117] illustrate that the effectiveness of metallic foam in HTE is contingent upon factors such as porosity, pore density, and thermal conductivity.
The utilization of metallic foams in various applications has acquired significant interest. In a study by Xiao et al. [118], two types of metallic foams, copper and nickel, were compared for their effectiveness in creating a composite PCM. Their findings revealed that the copper metal foam exhibited a superior enhancement in thermal conductivity compared to its nickel counterpart. Similarly, Aramesh and Shabani [75] conducted a comparative analysis involving different setups: (a) no PCM, (b) pure PCM, (c) PCM with fins, and (d) PCM with metal foam in an evacuated tube solar collector. While the absence of PCMs (setup a) resulted in a higher outlet temperature, it lacked the energy storage capability observed in setups involving PCM (b, c, d). Notably, setup (d) incorporating PCM with metal foam exhibited a reduced temperature drop, enhanced heat storage, improved heat transfer performance within the tubes, and higher overall efficiency. Further investigations exploring the application of this technique can be found in Table 3.
The remarkable thermal conductivity of metallic foams facilitates the solidification and melting processes of PCMs. However, choosing an appropriate position when placing the PCM is necessary, as this will allow for a more efficient heat transfer. This observation was only made in LHTESS with tubes. Regarding the application of this technique, few current studies validate the results in hot water generation, whether using solar collectors or storage tanks. Nevertheless, the collective evidence from reviewed studies consistently highlights the exceptional performance of copper metallic foams. Therefore, it is recommended to prioritize investigations focusing on copper metallic foams as a foundational starting point for future research endeavors in this domain.
Table 3. Research about porous media in the literature.
Table 3. Research about porous media in the literature.
AuthorPCM/HTFPorous MediaType Study 3Focus StudyResults
Zhu et al. [65]Paraffin wax 2Copper metal foamN/EMelting process
  • Increasing the proportion of metal foam decreased the melting time of the material.
  • Heat storage rate increased.
  • Enhanced thermal conductivity.
  • Weakening of natural convection heat transfer because the metal foam restricts the natural convection of the PCM.
Zhu et al. [119]Paraffin wax 2Copper metal foamEMelting process
  • Increased PCM melting time.
  • Increasing the proportion of metal foam can increase heat transfer by conduction.
Alam et al. [120]n-eicosane/H2OCopper metal foamNSolidification process
  • Decreased porosity in the PM can favor solidification by decreasing it, thanks to the thermal conductivity of PM.
  • Performance improvements are observed during the discharging phase when using PM, particularly when the PCM is in direct contact with the HTF.
  • Using the M-11 configuration has a solidification time reduction of up to 91.1% compared to M-1 (Figure 9), but the cost can be high.
Wang et al. [121]Paraffin wax 2Copper metal foam (Porosity 95%, pore density 5PPI)EMelting process
  • Increasing the PM proportion decreases the discharging time and temperature gradient.
  • Heat storage rate and integrated heat transfer coefficient increased.
  • Heat conduction plays an important role in this HTE method.
Yang et al. [122]Paraffin/H2OOpen-cell metal foamEMelting process
  • Under the use of different inlet velocities, the efficiency of TES increased.
  • Melting time was reduced by 64%, and there was better temperature distribution due to foam conduction.
Baruah et al. [123]PCM 1,2Capsules of metal foamNMelting process
  • The metal foam can increase heat transfer and thus enhance the melting process.
  • By reducing the capsule’s size and the metal foam’s porosity, a higher cover thickness is achieved, and thus, better melting time results are achieved.
1 PCM is not specified/disclosed. 2 HTF is not specified/disclosed. 3 Type of study: N = numerical and E = experimental.

4.1.4. Encapsulation

Encapsulation involves enveloping a material with a protective coating, which is crucial in LHTESS. Various types of coatings, including metallic, inorganic, and plastic, necessitate careful selection for optimal performance [21]. Encapsulation serves several key purposes, including isolating the PCM from the external environment, preventing direct contact with the HTF, mitigating external volume change reactions, enhancing system efficiency, and augmenting the heat transfer surface [85]. Different integration methods for PCM encapsulation exist, such as macroencapsulation (approximately 1 mm), microencapsulation (0–1000 μm), nanoencapsulation (0–1000 nm), immersion, and direct incorporation [44,72,124]. While various PCMs can be encapsulated, paraffin wax and sodium acetate trihydrate are commonly employed in this context. Among the available encapsulation materials, plastic, aluminum, and stainless steel are frequently used for macroencapsulation [125]. In contrast, although more intricate in manufacturing, microencapsulation offers superior heat transfer capabilities [126]. Encapsulation with metallic materials like copper, aluminum, and steel presents an attractive option for enhancing thermal conductivity. However, it poses manufacturing challenges [85]. Figure 10 illustrates diverse ways of PCM encapsulation.
Different parameters must be considered when encapsulating a PCM, as they can affect or enhance heat transfer. These parameters are the shell material, geometry, and core-to-coating ratio (decides the encapsulated PCM’s mechanical strength and thermal stability). Additionally, factors such as the Stefan number, the temperature range of the PCM, and the volumetric concentration of the microcapsule can exert a significant influence on heat transfer [126]. One of the significant challenges associated with encapsulating materials is the risk of leakage. Therefore, conducting leakage analysis on the PCM during encapsulation is essential to ensure its reliability before deploying it in practical applications. Leakage analysis involves subjecting the encapsulated PCM to thermal cycling and thorough cleaning procedures to assess its integrity and performance [127].
Microencapsulation presents an opportunity to improve the energy storage efficiency and enhance various thermal properties in direct absorption solar collectors [128]. This is because there is no change in the velocity of water and microencapsulated PCM product of microencapsulation; a diameter of 5 μm is recommended to enhance the performance [129]. Nanoencapsulation of PCM offers benefits such as improved thermal conductivity, leakage prevention, reduced overcooling, and increased suspension capacity at the melting temperature [124,130].
Certain investigations into cylindrical macroencapsulation have demonstrated its potential to increase energy storage density and prolong the storage duration. However, simply increasing the PCM amount does not necessarily improve the system’s thermal performance, as a critical threshold exists for PCM quantity [131,132]. In a study by Sun et al. [133], an experimental–numerical analysis was conducted to evaluate the impact of integrating encapsulated PCMs into a water storage tank linked to four unglazed monocrystalline photovoltaic–thermal (PVT) modules. Their findings indicated a slight increase in average and overall electrical efficiency; however, the authors caution that alterations may influence these values in the flow rate.
Other studies have explored spherical encapsulation, such as the investigation by Nallusamy et al. [15], who employed spherically encapsulated paraffin with high-density polyethylene in a hybrid storage system combining sensible and latent heat. Their findings indicated a faster discharge period, suggesting this hybrid system is well-suited for intermittent hot water discharge systems. In a separate study, Shin et al. [77] compared elliptical and spherical capsules with the elliptical capsule, composed of polyethylene, aimed at enhancing heat transfer. The results demonstrated that the elliptical geometry could increase the Nusselt number by fivefold, reducing the charging and discharging times by 50% and 35%, respectively. Moreover, this experiment, conducted on a large scale, exhibited favorable charge and discharge times, suggesting its potential as a thermal battery.
PCM encapsulation is common in storage tanks, particularly for prolonged hot water generation. Macroencapsulation, owing to its affordability, has garnered significant attention, especially in mixed heat storage systems like LHTS-SHTS. However, real-world applications of encapsulation in solar collectors remain largely unexplored, predominantly confined to laboratory-scale investigations, thus presenting a promising avenue for future research. Additionally, exploring diverse macroencapsulation geometries can enhance heat transfer efficiency by augmenting the surface area for heat transfer. Nonetheless, while microencapsulation demonstrates promising outcomes, its high manufacturing cost poses a significant limitation, rendering it less accessible for LHTESS applications.
Furthermore, a techno-economic analysis was conducted to investigate the casing cost and encapsulation methods [47]. Findings revealed that PCM encapsulated with aluminum alloy, titanium, and carbonate tubes offer a cost-effective solution for their deployment. Moreover, the overall cost of encapsulation is contingent upon the casing material and encapsulation technique employed, with due consideration to the minimal cost associated with PCM itself.

4.1.5. Geometry and Orientation Variation

The geometry and orientation of TES systems play a crucial role in determining their performance. Therefore, it is essential to select a geometry that ensures uniform temperature distribution within the TES system and to consider the container orientation, which can influence heat transfer [85]. Various LHTS geometries are available, including circular, cylindrical shell and tube, rectangular, and triplex tube configurations (which consist of a cylinder with two tubes of different sizes inside, facilitating the exchange of HTF and PCM) [6]. This method offers long-term viability compared to alternative techniques like nanoparticles and fins. Notably, the container’s inclination angle can impact melting and solidification rates [134]. Additionally, the TES system can be enhanced by modifying the container geometry or the tubes through which the HTF flows.
Yan et al. [135] conducted a numerical study investigating the impact of altering the shape of a cylindrical latent heat storage unit (CLHSU) on both the charging and discharging times. Figure 11 illustrates the CLHSU before and after the geometry modification. The study focused on varying the wavelength (Lw) and wavelength amplitude (aw) to assess their effects on the charging and discharging times. Results indicated significant changes in the heat transfer coefficient and the velocity of PCM during these processes. During discharging, the heat transfer coefficient experienced a slight 2% decrease due to the corrugated wall but remained higher than that of the CLHU-S model.
Moreover, it was noted that the parameters Lw and aw played a minor role in the discharging process but had a more pronounced impact during charging. Additionally, Aggarwal et al. [17] highlighted in their research the significance of the tilt angle of evacuated tube solar collectors (ETSCs) in enhancing effectiveness and cost efficiency across different geographical regions. Thus, it is imperative to consider this factor when planning the installation of a HWGS based on the specific location of the study.
Although the numerical investigation conducted by Quitiaquez et al. [136] focuses on enhancing heat transfer within a solar collector/evaporator primarily used in heating systems, it reveals a notable improvement in heat generation when modifying the cross-section of the tubes, as illustrated in Figure 12. As a result, alternative geometries are being considered for HWGS. However, an economic analysis is imperative to determine whether this enhancement is economically viable for enhancing system performance. Additionally, experimental validation is essential to ascertain whether altering tube or storage tank geometry can enhance efficiency and reduce the charging and discharging times of LHTESS.

4.1.6. Composite Phase Change Materials (CPCMs)

CPCMs are favored for energy storage due to their exceptional thermal conductivity, low cost, enhanced productivity, chemical stability, corrosion resistance, and thermal diffusivity [81]. Certain CPCMs incorporate nanofillers like graphite, graphene oxide (GO), and hexagonal boron nitride (HBN), which significantly augment the thermal properties of the PCM, thereby benefiting solar energy storage systems [137]. Additionally, CPCMs with additives or nanoparticles such as expanded graphite (EG) and carbon fiber (CF) exhibit favorable thermochemical properties, high thermal conductivity, and remarkable heat storage capacity [44].
Nanoparticles, characterized by their dimensions smaller than 100 nm, exhibit thermal conductivity influenced by several factors such as concentration, temperature, particle size, pH, shape, material composition, and potentially the manufacturing process [1]. The literature highlights diverse methods for synthesizing nanoparticles from disposable materials, as delineated in Table 4. However, exploring the feasibility of producing nanoparticles from waste materials remains relatively unexplored. Conversely, limited research delves into the cost-effectiveness of incorporating nanoparticles in PCM preparation, particularly regarding implementation expenses for specific applications. While some studies demonstrate the enhancement of PCM thermal conductivity by adding expanded graphite or graphite nanoparticles, it is noteworthy that this augmentation affects thermal conductivity, melting time, and overall thermal performance positively [138,139,140].
D’Oliveira et al. [141] demonstrated the capacity of highly conductive nanoparticles to augment the thermal conductivity of PCM with low melting temperatures (ranging from 20 to 70 °C). The literature underscores the potential of carbon-based nanoparticles to supplant conventional metallic nanoparticles due to their commendable stability and ability to enhance PCM thermal conductivity [45,147,148]. In comparison, H.M Teamah and M. Teamah [149] agree on carbon-based nanoparticles but indicate that metallic foams are also strong candidates. In a study by Cabeza et al. [150], a CPCM comprising 10% volume of graphite and 90% volume of sodium acetate was investigated for hot water generation. Their findings revealed that employing this CPCM could extend the duration of hot water availability, contingent upon the number of bottles used. Although their study assessed 2, 4, and 6 bottles, it clarified that the energy storage density surged to 40%, 57.2%, and 66.7%, respectively.
In contrast, Xie et al. [151] present a study demonstrating the feasibility of utilizing environmentally sustainable materials in creating CPCMs. They employed coconut shell charcoal (CSC) as the primary material in their investigation. Focused on optimizing the PCM charging process, they augmented the PCM with CSC, modified the supporting material (H2O2), and evaluated its thermal characteristics in domestic solar energy applications. Their findings revealed that the CPCM exhibited a nearly threefold increase in thermal conductivity compared to non-CSC variants. Moreover, the CPCM displayed altered phase change temperatures, reduced latent heat, and improved efficiency. Furthermore, they evaluated the material’s performance in a tankless solar water heater, demonstrating its ability to store energy for subsequent use after sunset effectively. Additional significant studies are cataloged in Table 5.
This approach can be combined with other methodologies like microencapsulation, thereby augmenting the thermal characteristics of the PCM and promoting uniform temperature dispersion [157]. The utilization of CPCMs is highly prevalent in hot water generation. Consequently, there is a proposition to fabricate CPCMs incorporating nanoparticles sourced from both organic and inorganic waste materials. Despite the extensive literature review, only limited instances of CPCMs formulated from organic waste have been identified. Moreover, no numerical or experimental studies have been encountered that validate their application in LHTESS.
It is important to acknowledge that this observation might stem from the relatively low conductivity of these materials, unlike the case with metallic nanoparticles. However, this inference remains speculative due to the absence of supporting studies. A thorough examination of the literature reveals that most authors have primarily combined nanoparticles with paraffin waxes. This highlights a potential way for further investigation to explore the utilization of nanoparticles with alternative PCMs. Such exploration could yield significant advancements in properties and heat transfer mechanisms.

4.1.7. Multiple PCMs (M-PCMs) or Cascade LHTES System

TES systems employing M-PCMs offer a promising solution to mitigate thermal distortion during the charging and discharging phases. Numerous studies suggest that these systems can significantly improve efficiency and expedite charging processes, contingent upon the specific thermal properties of the PCMs used, such as the phase change temperature, latent heat, thermal conductivity, and mass ratio [158,159]. Therefore, carefully selecting materials is imperative to realize performance enhancements [160]. This advancement can potentially optimize heat transfer during latent heat storage periods, offering superior efficiency and flexibility in energy storage and delivery [160,161,162]. The position of PCMs within the system is dictated by their respective melting temperatures, as illustrated in Figure 13. As depicted in Figure 13a, for heat storage, PCMs should be positioned in decreasing order along the flow direction of the HTF, while during discharge, the HTF flows in the opposite direction [158]. Figure 13b showcases various shapes applicable to U-tube TES systems, demonstrating potential up to 30% enhancements in the charging process [163].
Paraffin waxes (such as paraffin wax, RT60, and others) and fatty acids (including myristic acid, stearic acid, lauric acid, and others) are commonly used for energy storage. Moreover, several studies have carried out investigations using two to five PCMs to achieve expedited charging and discharging cycles and heightened thermal storage efficiency [48]. However, it is worth noting that a study suggests a limit of three stages, as stages after this threshold produce negligible performance improvements [164].
One notable study employing this technique is conducted by Wang et al. [165], wherein an experimental investigation involving a cylindrical capsule with three distinct PCMs (stearic acid, paraffin, and lauric acid) demonstrates that employing a cascade system can augment both the charging period and velocity. Similarly, Mazman et al. [166] explore the utilization of three CPCMs (paraffin–palmitic acid, paraffin–stearic acid, and stearic acid–myristic acid) and report favorable outcomes regarding the average water temperature throughout the full charging cycle of a storage tank. They note that during the tank’s complete discharging phase, the average water temperature remains below the PCM’s flow temperature, with the stearic acid–paraffin CPCM exhibiting superior thermal performance. Conversely, Lim et al. [167] show findings from their experimental study, highlighting a 28% increase in thermal performance when employing two distinct PCMs within a storage unit compared to just using one.
Khor et al. [168] investigated the charging process of three different PCMs configurations, revealing a reduction in charging time with this setup. Their findings underscore an effective arrangement for positioning various PCMs within a LHTESS. Conversely, Pu et al. [169] conducted a numerical study, corroborated by experimental validation, to assess whether employing M-PCMs could augment heat transfer efficiency and expedite PCM melting. Their investigation employed a shell-and-tube TES unit featuring three PCMs arranged radially alongside copper foam. A comparison was drawn with the utilization of a single PCM. Contrary to expectations, the results indicated that employing M-PCMs did not yield significantly higher HTE compared to using a single PCM. Additionally, the authors suggested optimizing thermal performance by adjusting the porosity distribution within the copper foam.
In this technique, careful PCM selection is imperative, as the integration of cascading PCMs that do not contribute to smooth heat transfer may adversely impact the system’s HTE. Hence, consideration of the thermal properties of the PCM is vital in this regard. It is noteworthy that, for the effective implementation of this method, PCMs with phase change temperatures not surpassing 60 °C are recommended. However, this recommendation depends on the prevailing climatic conditions in the desired hot water generation setting, as it necessitates a progressive phase change within the system. Numerous experimental studies validating HTE were identified for this technique, involving blending various PCMs such as fatty acids and paraffin waxes or using only paraffin waxes. Furthermore, it was observed that while this technique is commonly employed in TES tanks, it is less prevalent in solar collectors or shell-and-tube TES units. Determination of the optimal quantity of PCM modules for this technique is crucial, as divergent opinions exist regarding the maximum amount of PCMs to be employed.

4.1.8. Coils

Based on previous observations, researchers tend to prioritize the augmentation of surface area in storage systems. Hence, one viable approach is adopting coil or spiral/helical tube configurations. Such arrangements can potentially improve system performance, elevate energy efficiency, and decrease the PCM’s melting duration [170].
Based on the investigation conducted by Rogowski and Andrzejczyk [95], various research studies are delving into the coil geometry to augment the solidification and melting characteristics of PCMs. Primarily experimental, these studies predominantly focus on low-temperature PCMs, commonly employed in hot water generation. Figure 14 illustrates some examples of used coils, while Table 6 presents a compilation of research efforts concerning coil utilization in LHTESS.
This approach circumvents health concerns by averting direct contact between the PCM or any fluid and the HTF within LHTESS. Its applicability extends to SHTS systems, ensuring the storage material remains isolated from the HTF. Multiple experimental investigations in this methodology corroborate its efficacy in enhancing heat transfer, albeit most of these studies are conducted at the laboratory scale. Therefore, validating this technique for hot water generation in real-world scenarios is advisable to ascertain its potential for efficiently improving heat transfer in such systems.

4.1.9. Nanofluids

Nanofluids offer distinct advantages in solar systems or collectors compared to traditional fluids. They can augment heat transfer rates and find utility across various applications [171,172]. Nanofluids are derived from nanoparticles (Al, Au, Ag, Cu) with sizes below 100 nm dispersed in water or other fluids [173]. Hybrid nanofluids are also prevalent, containing two types of nanoparticles within a fluid. Employing stable hybrid nanofluids with reduced viscosity and heightened thermal conductivity can elevate the efficacy of solar collectors [1]. These fluids serve as a potential alternative to enhance heat transfer efficiency in PCMs, alter thermal conductivity, boost the effectiveness of heat storage systems, or serve as substitutes for HTF [106,174]. Nanofluids can be integrated with other methodologies like encapsulations or used independently to amplify the thermal performance of solar collectors [1,108,175,176,177].
Table 6. Use of coil in latent heat storage systems according to the literature.
Table 6. Use of coil in latent heat storage systems according to the literature.
AuthorType of Study 1Overview
Kabbara et al. [42]EThe system’s performance was analyzed by incorporating a helical coil into a storage tank with lauric acid PCM. Temperature variations were notable during charging and discharging. However, the authors emphasize the need to explore different coil geometries and flow rates to fully grasp the system’s dynamics.
Anish et al. [178]EUsing a double helix coil consisting of a tube, a significant difference in the temperatures of the top and bottom of the tank was obtained in the melting process. Moreover, the solidification process occurred uniformly in the tank.
Korti and Tlemsani [179]EUsing a copper helical coil with various PCM types, charging temperatures and flow rates revealed a higher efficiency during the charging process compared to discharging. This discrepancy is due to convection dominance during melting. Additionally, charging temperatures notably impacted the results.
Dinker et al. [180]EA study was conducted in a rectangular storage tank with PCM (beeswax) and HTF (water) flowing in a helical coil with different temperatures and flow rates. Their results show that temperature can significantly influence the efficiency of the solidification and melting processes.
Saydam et al. [181]EA study investigated the solidification and melting processes of a PCM (Paraffin wax) in a storage tank with a helical coil. Findings revealed faster melting of the PCM on the tank’s periphery and slower near the axis during both processes. However, the authors suggest adding more coils at the tank’s bottom for improved discharge efficiency. It was found that the flow direction of the HTF (ethylene glycol (EG)–water mixture) had a negligible impact on the charging and discharging period but did influence the temperature fluctuations of the PCM within the energy storage unit.
Rahimi et al. [182]EThe impact of charging temperature on the coil storage tank’s performance was assessed alongside the introduction of a dimensionless parameter known as the Stefan number. The findings indicate that a specific Stefan number can decrease the PCM’s melting time.
1 Type of study: E = experimental.
Using nanofluids in solar systems offers several advantages, including reducing the required heat transfer area, high density, conductivity, and thermal properties, along with favorable optical characteristics and stability [183]. When combined with PCMs possessing good HTE and thermal stability, nanofluids can extend operational time and decrease energy consumption [184]. However, their main disadvantages include high costs, thermal instability, chemical compatibility issues, and complexities in the manufacturing process [183]. Over the years, nanofluid technology has advanced, as depicted in Figure 15 and Figure 16, showcasing the diverse fluids and nanoparticles used in preparing nanofluids or hybrid nanofluids. Commonly employed nanoparticles in solar collectors encompass CeO2, SiO2, Al2O3, CuO, graphene, and TiO2 [4,17,108,185]. Additionally, carbon-based nanomaterials exhibit superior thermal conductivity for such applications [141,176]. Nonetheless, a primary challenge lies in selecting appropriate nanoparticles and fluids for specific applications [52]. Aggarwal et al. [17] have demonstrated that PCMs and nanofluids can synergize to enhance heat transfer in solar water heaters, including evacuated tube solar collectors (ETSCs) and flat plate solar collectors (FPSCs), leveraging the manifold advantages offered by nanofluids.
Figure 17 displays various models for simulating nanofluids, with the mixture model being the most prevalent due to its ability to simulate different velocities across phases and its applicability in interpenetrating phases [186]. Solar collectors are commonly used for low-temperature systems, particularly in hot water generation [187]. Figure 18 showcases examples of solar collectors in the literature, providing insight into where nanofluids have been employed for enhancement. Subsequently, this paper will outline research conducted with nanofluids in solar collectors, structured into three sections to facilitate comprehension.
  • Flat plate solar collectors (FPSCs)
Using PCMs in FPSCs can extend hot water availability and enhance system efficiency. However, outcomes are contingent on factors such as the degree of inclination, PCM–collector contact, solar radiation, and thermal stratification in the storage tank [191]. FPSCs are frequently employed in research due to their accessibility and affordability, leading to numerous studies aimed at improving heat transfer (via nanofluids), maintaining stable temperatures (with PCMs), or enhancing system thermal capacity (through nanofluid–PCM integration) [177,184]. Table 7 presents a selection of studies conducted with FPSCs.
2
Evacuated tube solar collectors (ETSCs)
ETSCs feature parallel tubes designed to withstand reflection and absorb high solar radiation with specialized glass coatings, enhancing efficiency, thermal conductivity, and energy storage [177,195]. Hence, they are extensively employed in domestic applications [196]. As of 2020, thermosyphon-type ETSCs are the most commonly utilized [183]. Table 8 showcases notable studies conducted with ETSCs.
3
Photovoltaic–thermal collectors
Kezemian et al. [197] conducted a 3D numerical study to enhance solar collector performance using various hybrid nanofluids: MWCNT–aluminum oxide, MWCNT–silicon carbide, graphene–aluminum oxide, and graphene–silicon carbide. Their findings reveal that the MWCNT–silicon carbide hybrid nanofluid exhibits superior electrical and thermal energy efficiency compared to others. Similarly, Khodadadi and Sheikholeslami [198] demonstrated that incorporating nanoparticles such as MWCNT, SiC, Cu, Ag, Al2O3, and ZnO in water and PCM boosts the charging rate while marginally reducing unit and coolant temperatures. Additionally, they observed changes in the PCM’s liquid fraction with alterations in the system’s flow rate.
Table 8. Studies on the use of nanofluids in evacuated tube solar collectors.
Table 8. Studies on the use of nanofluids in evacuated tube solar collectors.
AuthorNanofluid Based onType of Study 1Results
Tabarhoseini et al. [199]Nanoparticles of CuO/pure H2ON
Irreversibility of heat transfer caused sudden increases in fluid viscosity and pressure change.
Nano-sized powders within the fluid are suspended.
Entropy generation decreased by 6.3% with the use of nanofluids.
Ghaderian et al. [200]Nanoparticles of CuO/H2OE
At a volume concentration of 0.05% of nanoparticles and a flow rate of 60 l/h, efficiency increased by 51.4%. This boost stemmed from heightened thermal conductivity attributable to the nanoparticles’ high density.
Al-Mashat and Hasan et al. [201]Al2O3/waterN/E
If the volume fraction of Al2O3 increases, the efficiency can increase proportionally.
The recommended angle of inclination of the evacuated tube is 41° annually.
Eltaweel et al. [196]MWCNT/waterE
Increased flow rate and nanofluid concentrations can increase efficiencies.
Mahbubul et al. [202]Single-walled carbon nanotubes (SWCNT)/waterE
Efficiency increased by almost 10%.
Daghigh and Zandi [203]water/TiO2, water/CuO and water/MWCNTT/E
A nanofluid composite with MWCNT nanoparticles obtained a higher performance increase.
Kumar and Kaushal [204]Nanoparticles of graphene- ethylene glycol/waterE
Variations in graphene concentrations revealed a proportional increase in thermal conductivity and efficiency, particularly evident when fluid inlet temperature aligns with ambient conditions.
Ghaderian and Sidik [205] Al2O3/distilled waterE
The collector’s efficiency rises with nanofluid use, further increasing with higher volume fractions of nanoparticles.
1 Type of study: N = numerical, T = theorical, and E = experimental.
In conclusion, passive methods, including nanofluids, encapsulation, fins, M-PCMs, and porous media, are deemed most effective for hot water generation applications. Among these, fins are considered practical, especially with simple configurations during system installation. Additionally, M-PCMs are seen as advantageous when proper PCM selection is used. These techniques are commonly employed due to their low costs, except for nanofluids, which incur higher manufacturing costs. However, it is essential to note that the literature does not have data on the construction, creation, or operational costs of these methods in energy storage systems; thus, our perspective is solely based on selected document readings.

4.2. Active Methods

Active methods, unlike passive ones, employ external sources or auxiliary tools to enhance heat transfer [69]. Shank and Tiari [46] highlighted various approaches to improve HTE in PCM systems, such as mechanical aids, vibration, jet impingement, injection, and external fields. Three of these techniques stand out as potential starting points for further research in hot water generation. Below are summarized conclusions regarding each method as indicated by these authors.
  • Mechanical aids, such as rotating cylinders, rotary systems, and scraped surfaces, play a significant role in the charging and discharging processes of PCM systems, reducing the solidification time and enhancing heat transfer. However, their use entails complex system designs, increased manufacturing and maintenance requirements, and safety risks due to the constant movement of the liquid PCM during operation.
  • Vibration: Although vibration has shown promise in enhancing PCM fusion during the charging process, further investigation is needed, particularly regarding its effectiveness during discharge. It is important to note that this technique operates with high amplitudes and frequencies, posing potential safety risks during operation.
  • External fields: This method introduces a novel approach to improve the thermal behavior of LHTES systems. However, it may encounter conflicts with system components due to the involvement of magnetic, electric, and ultrasonic fields. Further studies across various fields (electric, magnetic, and ultrasonic) are necessary to determine its potential for enhancing heat transfer in HWGS with PCMs.
Alternatively, Yan et al. [8] performed an experimental investigation employing ultrasound to improve heat transfer. Their study aimed to assess the impact of ultrasound on the charging process of PCMs. Results demonstrated a significant reduction in charging time (60.69%) and a substantial increase in the heat transfer coefficient (250.97%) at a constant temperature of 60 °C and a flow rate of 3 L/min. Additionally, enhanced natural convection within the PCM was observed. Thus, ultrasound demonstrates the potential for enhancing PCM utilization in hot water systems.
A notable disparity in operational cost and safety risk arises when comparing active and passive methods, particularly without adequate installation measures. Consequently, many researchers lean towards passive methods, which is evident in the abundance of results observed in Section 4.1 and this section. However, given the lack of research validating a fair comparison, investigations with existing setups tailored to active methods are recommended. This is crucial to ascertain the potential of these methods for residential or industrial hot water generation. Furthermore, economic studies are essential to evaluate the long-term benefits of employing active methods, considering the financial investment.

4.3. Hybrid Methods

A hybrid approach combines at least two active or passive techniques, offering potentially higher efficiency than individual methods. Recent studies have underscored the significance of exploring these hybrid methods [26,72]. Below, various combined techniques found in the analysis of this work are presented.
Asgari et al. [78] conducted numerical research on fin utilization for improving heat transfer and PCM solidification, exploring various synthetic forms of Al2O3-Cu nanoparticles (brick, cylindrical, platelet, and lamina). They concluded that increasing the volume fraction of hybrid nanoparticles accelerates solidification and enhances heat transfer. The study suggests that nanoparticles are essential for faster solidification in a finned system. Conversely, Kazaz et al. [175] demonstrated that nano-encapsulation of paraffin PCM can boost energy storage, varying efficacy based on the type of nanoparticles used.
Zhu et al. [206] propose evaluating the energy storage efficiency of a composite consisting of PCM with metal foam, finned metal foam with graded porosity (PCM-FFGP), and fin. Their numerical study demonstrates that PCM-FFGP significantly improves system performance and reduces the PCM melting time by facilitating the PCM melting sequence with the fin and enhancing heat transfer between the heat source and PCM through the metal foam. They suggest that increasing the number of pores per inch may reduce natural convection heat transfer in PCM-FFGP. Therefore, they recommend a 3% porosity gradient along with a 5 mm thickness of the fins for better energy storage capacity. Conversely, Cui et al. [12] suggest that porous media can achieve higher heat transfer enhancement based on research conducted until early 2022. Lastly, although the work of Sathyamurthy et al. [207] is not directly related to hot water generation, it suggests a potential application of a hybrid method by using soda cans encapsulated with black paint and carbon soot nanoparticles to enhance thermal conductivity and heat absorption of the PCM. Other hybrid methods from the literature are summarized in Table 9.
Combining different techniques in LHTESS can significantly enhance heat transfer efficiency by improving multiple parameters simultaneously, such as increasing the heat transfer surface area and the thermal conductivity of the PCM. Table 9 highlights various combinations, with nanoparticles being prevalent in most cases, aligning with the findings of Asgari et al. [78] and underscoring the importance of nanoparticles in systems employing diverse techniques. Exploring combinations involving more than two techniques or integrating passive and active techniques presents promising research possibilities for further investigation.

5. Challenges and Prospective Directions

The review indicates a scarcity of studies focusing on enhancing hot water generation applications. Nonetheless, this study serves as a guide for advancements in HTE within this domain. While most HTE investigations in domestic settings center on fins, porous media, and encapsulation techniques, further research is needed to explore other methods and their efficacy across different global climates. Moreover, there is a lack of experimental data documenting the economic and health implications of employing the various techniques discussed in this paper.
Regarding active methods, only a single study has been undertaken using ultrasound on a laboratory scale. While its outcomes appear promising, further assessment within a full-scale system is imperative to ascertain its efficacy in hot water generation. Conversely, hybrid methods present a broad research method, as numerous combinations of techniques can be explored, encompassing both passive–passive and passive–active approaches. Notably, the literature exploration yielded no information on mixtures of active–active and passive–active methods.
Despite the promising potential of nanofluids, further studies are needed to evaluate their performance under various climatic conditions and to assess their environmental impact at the end of their lifecycle. These investigations are essential for validating their use or substitution for traditional refrigerants in solar collectors.

6. Conclusions

This document provides a bibliographic study of numerical, experimental, and laboratory-scale research on HTE in LHTESS that may be useful for hot water generation through low-temperature PCMs. Firstly, the bibliometric analysis of the selected documents revealed a trend over the years towards improving heat transfer in energy storage systems, providing a global overview of the topic. Additionally, extensive research by academic institutions and predominant article publications in Asian countries was observed. Despite the selected documents being related to PCMs and domestic hot water, there was limited connection with solar energy or solar water heaters. This could indicate the need for further studies on various techniques presented using solar water heaters. Based on the analysis of the selected documents, the main conclusions are summarized below:
  • The most dominant phenomena in the solidification and melting processes are natural convection and conduction, so improving the thermal conductivity of PCM can contribute to these two phenomena.
  • HTE enables better solidification and melting processes of PCM, in addition to increasing the efficiency and performance of the heat exchanger. According to the literature, passive methods are the most commonly used due to their simple application and low cost.
  • Microencapsulation with a metallic coating has promising potential in various applications, such as hot water generation.
  • More simulations were conducted on the geometric variation technique, indicating that, in some cases, manufacturing processes may be difficult to validate experimentally, even if the results are promising.
  • When using various PCMs, the predominant parameters are PCM selection, and the amount of PCM used. Poor selection of the quantity and type of PCM can lead to unpromising results in energy storage.
  • Carbon-based nanoparticles could have a promising future in TES, but the use of recyclable or organic media cannot be ruled out, as it may positively impact the environment.
  • According to the literature found on hot water generation, there is a lack of understanding of how these HTE techniques behave under user demand. This contributes to a new research point, as it would provide a better estimate for real-world applications. In particular, most HTE studies applied to hot water generation were conducted at the laboratory scale, with constant flow rates.
  • No research was found comparing various HTE techniques in a single heat storage model. Therefore, it is recommended that studies focused on these comparisons be conducted to determine which technique yields better results in terms of system efficiency improvement and solidification and melting processes.
  • According to the applied methodology, few documents were found on using active methods in hot water generation. However, this article presents new techniques that could help initiate new research through active methods or even generate new hybrid methods by combining passive and active ones.
  • When comparing methods (active, passive, and hybrid) primarily used in hot water generation applications, passive methods prevail due to their lower complexity. However, hybrid methods may provide a good option for a more efficient system and have gained significant popularity recently. Currently, only hybrid methods combining passive techniques have been found.
  • Nanofluids can enhance PCM’s properties or replace HTF in solar energy applications. Nanofluids have made substantial advancements over the last decade due to their ability to improve efficiency, thermal conductivity, and the geometry of solar collectors.
  • Few studies were found discussing economic studies to assess the viability or profitability of using different techniques. This could create a new research point, as it would allow for comparing scientific results with creation and operation costs, thereby determining which techniques are promising and cost-effective to apply in the field of hot water generation.
Ultimately, this research opens up new opportunities for study and a deeper understanding of the techniques commonly used for HTE in HWGS.

Author Contributions

Conceptualization D.I.B., J.B.R., M.D.L.A.O.D.R., A.M.J.R. and I.H.; Methodology, and draft preparation, D.I.B.; review and editing, J.B.R., M.D.L.A.O.D.R. and A.M.J.R. All authors have read and agreed to the published version of the manuscript.

Funding

This research was partially funded by Secretaría Nacional de Ciencia, Tecnología e Innovación (SENACYT) in support of the Master of Science in Mechanical Engineering program, VI Cohort.

Data Availability Statement

Not applicable.

Acknowledgments

The authors express their gratitude for the financial support provided by the Master of Science Program in Mechanical Engineering at the Faculty of Mechanical Engineering (https://fim.utp.ac.pa/ accessed on 11 February 2024), the Universidad Tecnológica de Panamá (https://utp.ac.pa/ accessed on 11 February 2024), along with the Secretaría Nacional de Ciencia, Tecnología e Innovación (SENACYT) and The National Research System (Sistema Nacional de Investigación, SNI) of the Panamanian Government. Furthermore, special acknowledgment is given to SENACYT for granting access to the Scientific Bibliography Access Platform (Plataforma de Acceso a Bibliografía Científica, ABC), which facilitated the retrieval of information from the Scopus database. Finally, we extend our gratitude to the biosolids laboratory at the Centro de Investigaciones Hidráulicas e Hidrotécnicas (CIHH—https://codigestion.utp.ac.pa/ accessed on 10 May 2024), and specifically acknowledge the invaluable assistance rendered by its researchers, Daniel Nieto, Marian Ramírez, and Euclides Deago, during the course of this investigation.

Conflicts of Interest

The authors declare no conflicts of interest.

References

  1. Mahamude, A.S.F.; Kamarulzaman, M.K.; Harun, W.S.W.; Kadirgama, K.; Ramasamy, D.; Farhana, K.; Bakar, R.A.; Yusaf, T.; Subramanion, S.; Yousif, B. A Comprehensive Review on Efficiency Enhancement of Solar Collectors Using Hybrid Nanofluids. Energies 2022, 15, 1391. [Google Scholar] [CrossRef]
  2. Quitiaquez, W.; Estupinán-Campos, J.; Nieto-Londoño, C.; Isaza-Roldán, C.A.; Quitiaquez, P.; Toapanta-Ramos, F. CFD Analysis of Heat Transfer Enhancement in a Flat-Plate Solar Collector with Different Geometric Variations in the Superficial Section. Int. J. Adv. Sci. Eng. Inf. Technol. 2021, 11, 2039–2045. [Google Scholar] [CrossRef]
  3. Sikiru, S.; Oladosu, T.L.; Amosa, T.I.; Kolawole, S.Y.; Soleimani, H. Recent advances and impact of phase change materials on solar energy: A comprehensive review. J. Energy Storage 2022, 53, 105200. [Google Scholar] [CrossRef]
  4. Senthil, R.; Madurai Elavarasan, R.; Pugazhendhi, R.; Premkumar, M.; Vengadesan, E.; Navakrishnan, S.; Islam, M.R.; Natarajan, S.K. A holistic review on the integration of heat pipes in solar thermal and photovoltaic systems. Sol. Energy 2021, 227, 577–605. [Google Scholar] [CrossRef]
  5. Harris Bernal, I.A.; James Rivas, A.M.; Ortega Del Rosario, M.D.L.A.; Saghir, M.Z. A Redesign Methodology to Improve the Performance of a Thermal Energy Storage with Phase Change Materials: A Numerical Approach. Energies 2022, 15, 960. [Google Scholar] [CrossRef]
  6. Suresh, C.; Saini, R.P. Review on solar thermal energy storage technologies and their geometrical configurations. Int. J. Energy Res. 2020, 44, 4163–4195. [Google Scholar] [CrossRef]
  7. Prasad, D.M.R.; Senthilkumar, R.; Lakshmanarao, G.; Krishnan, S.; Naveen Prasad, B.S. A critical review on thermal energy storage materials and systems for solar applications. AIMS Energy 2019, 7, 507–526. [Google Scholar] [CrossRef]
  8. Yan, Z.; Yu, Z.J.; Yang, T.; Li, S.; Zhang, G. Impact of ultrasound on the melting process and heat transfer of phase change material. Energy Procedia 2019, 158, 5014–5019. [Google Scholar] [CrossRef]
  9. Arunachalam, S. Latent Heat Storage: Container Geometry, Enhancement Techniques, and Applications—A Review. J. Sol. Energy Eng. 2019, 141, 050801. [Google Scholar] [CrossRef]
  10. Dinker, A.; Agarwal, M.; Agarwal, G.D. Heat storage materials, geometry and applications: A review. J. Energy Inst. 2017, 90, 1–11. [Google Scholar] [CrossRef]
  11. El Habib Amagour, M.; Rachek, A.; Bennajah, M.; Touhami, M.E. Numerical investigation and performance analysis of a compact finned-tube heat exchanger uniformly filled with a phase change material for solar hot water production. In Proceedings of the 2019 International Conference of Computer Science and Renewable Energies (ICCSRE), Agadir, Morocco, 22–24 July 2019. [Google Scholar]
  12. Cui, W.; Si, T.; Li, X.; Li, X.; Lu, L.; Ma, T.; Wang, Q. Heat transfer enhancement of phase change materials embedded with metal foam for thermal energy storage: A review. Renew. Sustain. Energy Rev. 2022, 169, 112912. [Google Scholar] [CrossRef]
  13. Saxena, A.; Verma, P. Potential Techniques for Thermal Performance Enhancement for Solar Water Heaters; Department of Mechanical Engineering, Moradabad Institute of Technology, Nova Science Publishers, Inc.: Moradabad, India, 2021. [Google Scholar]
  14. Frazzica, A.; Manzan, M.; Sapienza, A.; Freni, A.; Toniato, G.; Restuccia, G. Experimental testing of a hybrid sensible-latent heat storage system for domestic hot water applications. Appl. Energy 2016, 183, 1157–1167. [Google Scholar] [CrossRef]
  15. Nallusamy, N.; Sampath, S.; Velraj, R. Experimental investigation on a combined sensible and latent heat storage system integrated with constant/varying (solar) heat sources. Renew. Energy 2007, 32, 1206–1227. [Google Scholar] [CrossRef]
  16. Harris, I.; James Rivas, A.; Ortega Del Rosario, M.D.L.A.; Saghir, M.Z. Recent developments in phase change material-based solar water heating systems: Insights on research trends and opportunities. Int. J. Thermofluids 2023, 20, 100359. [Google Scholar] [CrossRef]
  17. Aggarwal, S.; Kumar, R.; Lee, D.; Kumar, S.; Singh, T. A comprehensive review of techniques for increasing the efficiency of evacuated tube solar collectors. Heliyon 2023, 9, e15185. [Google Scholar] [CrossRef] [PubMed]
  18. Gadhave, P.; Pathan, F.; Kore, S.; Prabhune, C. Comprehensive review of phase change material based latent heat thermal energy storage system. Int. J. Ambient Energy 2022, 43, 4181–4206. [Google Scholar] [CrossRef]
  19. Murali, G.; Mayilsamy, K. Effect of Latent Thermal Energy storage and inlet locations on enhancement of stratification in a solar water heater under discharging mode. Appl. Therm. Eng. 2016, 106, 354–360. [Google Scholar] [CrossRef]
  20. Zhang, N.; Yuan, Y.; Cao, X.; Du, Y.; Zhang, Z.; Gui, Y. Latent Heat Thermal Energy Storage Systems with Solid–Liquid Phase Change Materials: A Review. Adv. Eng. Mater. 2018, 20, 1700753. [Google Scholar] [CrossRef]
  21. Reddy, K.S.; Mudgal, V.; Mallick, T.K. Review of latent heat thermal energy storage for improved material stability and effective load management. J. Energy Storage 2018, 15, 205–227. [Google Scholar] [CrossRef]
  22. Sivasamy, P.; Devaraju, A.; Harikrishnan, S. Review on Heat Transfer Enhancement of Phase Change Materials (PCMs). Mater. Today Proc. 2018, 5, 14423–14431. [Google Scholar] [CrossRef]
  23. PCM Products Ltd. Types of Phase Change Materials. 2024. Available online: https://www.pcmproducts.net/Phase-Change-Material-Solutions.htm (accessed on 4 May 2024).
  24. Huang, J.; Weng, M.; Yu, J.; Sun, L.; Zeng, H.; Liu, Y.; Zeng, W.; Min, Y.; Guo, Z. Advances and Applications of Phase Change Materials (PCMs) and PCMs-based Technologies. ES Mater. Manuf. 2021, 13, 23–39. [Google Scholar] [CrossRef]
  25. Youssef, W.; Ge, Y.T.; Tassou, S.A. CFD modelling development and experimental validation of a phase change material (PCM) heat exchanger with spiral-wired tubes. Energy Convers. Manag. 2018, 157, 498–510. [Google Scholar] [CrossRef]
  26. NematpourKeshteli, A.; Iasiello, M.; Langella, G.; Bianco, N. Thermal enhancement techniques for a lobed-double pipe PCM thermal storage system. Appl. Therm. Eng. 2023, 233, 121139. [Google Scholar] [CrossRef]
  27. Chow, T.-T.; Lyu, Y. Numerical analysis on the advantage of using PCM heat exchanger in liquid-flow window. Appl. Therm. Eng. 2017, 125, 1218–1227. [Google Scholar] [CrossRef]
  28. Abokersh, M.H.; Osman, M.; El-Baz, O.; El-Morsi, M.; Sharaf, O. Review of the phase change material (PCM) usage for solar domestic water heating systems (SDWHS). Int. J. Energy Res. 2018, 42, 329–357. [Google Scholar] [CrossRef]
  29. Goel, V.; Saxena, A.; Kumar, M.; Thakur, A.; Sharma, A.; Bianco, V. Potential of phase change materials and their effective use in solar thermal applications: A critical review. Appl. Therm. Eng. 2023, 219, 119417. [Google Scholar] [CrossRef]
  30. Berrocal, D.; Blandon, J.; De Los Angeles, M.; Del Rosario, O.; Harris, I.; James, A. Phase Change Materials in Hot Water Generation Systems: A Review. In Proceedings of the 2022 8th International Engineering, Sciences and Technology Conference (IESTEC), Panama City, Panama, 19–21 October 2022; pp. 620–626. [Google Scholar] [CrossRef]
  31. Kumari, P.; Ghosh, D. A comparative numerical analysis of concentric and hairpin heat exchanger for efficient energy storage using phase-change material. J. Therm. Anal. Calorim. 2023, 148, 12211–12224. [Google Scholar] [CrossRef]
  32. Chen, X.; Yang, X. Heat transfer enhancement for U-pipe evacuated tube solar absorber by high-emissivity coating on metal fin. J. Build. Eng. 2022, 50, 104213. [Google Scholar] [CrossRef]
  33. Yang, M.; Moghimi, M.A.; Loillier, R.; Markides, C.N.; Kadivar, M. Design of a latent heat thermal energy storage system under simultaneous charging and discharging for solar domestic hot water applications. Appl. Energy 2023, 336, 120848. [Google Scholar] [CrossRef]
  34. Xiao, Y.; Huang, P.; Wei, G.; Cui, L.; Xu, C.; Du, X. State-of-the-art review on performance enhancement of photovoltaic/thermal system integrated with phase change materials. J. Energy Storage 2022, 56, 106073. [Google Scholar] [CrossRef]
  35. Muzhanje, A.T.; Hassan, M.A.; Ookawara, S.; Hassan, H. An overview of the preparation and characteristics of phase change materials with nanomaterials. J. Energy Storage 2022, 51, 104353. [Google Scholar] [CrossRef]
  36. Mohammed Sarhan, A.A.; Cornelis Metselaar, H.S.; Paria, S.; Baradaran, S.; Newaz, K.S.; Zalnehzad, E. Horizontal Heat Exchanger for Thermal Energy Storage. Patent PCT/MY2015/050005, 27 August 2015. [Google Scholar]
  37. Ramarao, M.; Senthil Kumar, S.; Jayakrishna, S.; SUBBIAH, R.; Pushpanathan, D.P.; Babu, M.N.; Gopal, M.; Raju, M.M.; Thillaivanan, D.A.; Srikanth, G.B.; et al. Solar Thermal and PV-T Systems for Domestic Applications. Patent 202141010836, 26 March 2021. [Google Scholar]
  38. Mier Ruiz, J.M. Sistema de Calentamiento de Agua Por Energia Solar. Patent 200601705, 27 October 2009. [Google Scholar]
  39. Narayanan, S.S.; Kardam, A.; Kumar, V.; Verma, A.; Bhardwaj, N.; Madhwal, D.; Shukla, P.; Kumar, A.; Jain, V.K. Design and Fabrication of Instant Solar Thermal Water Heating System Based on Phase Change Material-Nanocomposite. Patent 201611024244, 19 January 2018. [Google Scholar]
  40. Iyengar, V.N.; Badkoobeh, O. Thermally Regulated Modular Energy Storage Device and Methods. Patent PCT/US2018/025886, 11 October 2018. [Google Scholar]
  41. Jamar, A.; Majid, Z.A.A.; Azmi, W.H.; Norhafana, M.; Razak, A.A. A review of water heating system for solar energy applications. Int. Commun. Heat Mass Transf. 2016, 76, 178–187. [Google Scholar] [CrossRef]
  42. Kabbara, M.; Groulx, D.; Joseph, A. Experimental Study of a Latent Heat Storage Unit with a Helical Coil Heat Exchanger. 2014. Available online: https://www.researchgate.net/publication/263423590 (accessed on 28 January 2024).
  43. Shank, K.; Bernat, J.; Regal, E.; Leise, J.; Ji, X.; Tiari, S. Experimental Study of Varying Heat Transfer Fluid Parameters within a Latent Heat Thermal Energy Storage System Enhanced by Fins. Sustainability 2022, 14, 8920. [Google Scholar] [CrossRef]
  44. Liu, W.; Bie, Y.; Xu, T.; Cichon, A.; Królczyk, G.; Li, Z. Heat transfer enhancement of latent heat thermal energy storage in solar heating system: A state-of-the-art review. J. Energy Storage 2022, 46, 103727. [Google Scholar] [CrossRef]
  45. Qiu, L.; Ouyang, Y.; Feng, Y.; Zhang, X. Review on micro/nano phase change materials for solar thermal applications. Renew. Energy 2019, 140, 513–538. [Google Scholar] [CrossRef]
  46. Shank, K.; Tiari, S. A Review on Active Heat Transfer Enhancement Techniques within Latent Heat Thermal Energy Storage Systems. Energies 2023, 16, 4165. [Google Scholar] [CrossRef]
  47. Jacob, R.; Saman, W.; Belusko, M.; Bruno, F. Techno-Economic Analysis of Phase Change Material Thermal Energy Storage Systems in High Temperature Concentrated Solar Power Plants. In Proceedings of the Asia-Pacific Solar Research Conference, Sydney, Australia, 8–10 December 2014; Available online: http://apvi.org.au/solar-research-conference/wp-content/uploads/2015/04/6-R-Jacob_peer_reviewed.pdf (accessed on 20 January 2024).
  48. Panchal, J.M.; Modi, K.V.; Patel, V.J. Development in multiple-phase change materials cascaded low-grade thermal energy storage applications: A review. Clean. Eng. Technol. 2022, 8, 100465. [Google Scholar] [CrossRef]
  49. Al-Abidi, A.A.; Mat, S.; Sopian, K.; Sulaiman, M.Y.; Mohammad, A.T. Internal and external fin heat transfer enhancement technique for latent heat thermal energy storage in triplex tube heat exchangers. Appl. Therm. Eng. 2013, 53, 147–156. [Google Scholar] [CrossRef]
  50. He, N.; Feng, G.; Wang, T. Research progress on solar energy storage water tanks based on phase-change materials. Gongcheng Kexue Xuebao/Chin. J. Eng. 2023, 45, 1795–1806. [Google Scholar] [CrossRef]
  51. Joybari, M.M.; Seddegh, S.; Wang, X.; Haghighat, F. Experimental investigation of multiple tube heat transfer enhancement in a vertical cylindrical latent heat thermal energy storage system. Renew. Energy 2019, 140, 234–244. [Google Scholar] [CrossRef]
  52. Venkateswarlu, K.; Varma, K.P.V.K.; Nutakki, U.K. Synthesis, characterization and application of mono-, hybrid and ternary nanofluids in hybrid photovoltaic thermal (PV/T) solar systems—A review. J. Braz. Soc. Mech. Sci. Eng. 2022, 44, 550. [Google Scholar] [CrossRef]
  53. Sharma, M.K. Alternative designs and technological advancements of phase change material integrated photovoltaics: A state-of-the-art review. J. Energy Storage 2022, 48, 104020. [Google Scholar] [CrossRef]
  54. Maridurai, T.; Harrish Ahamed, K.; Loganathan, K. Performance enhancement with different geometry of thermal energy storage systems. Int. J. Mech. Prod. Eng. Res. Dev. 2018, 8, 1210–1213. Available online: https://www.scopus.com/record/display.uri?eid=2-s2.0-85063215440&origin=inward&txGid=6ad7e3e4efc0468132df399a6ef057b9 (accessed on 6 February 2024).
  55. Nedjem, K.; Teggar, M.; Ismail, K.A.R.; Nehari, D. Numerical investigation of charging and discharging processes of a shell and tube nano-enhanced latent thermal storage unit. J. Therm. Sci. Eng. Appl. 2020, 12, 021021. [Google Scholar] [CrossRef]
  56. Kumar, A.; Kumar, A. Heat transfer analysis in thermal energy storage—A comprehensive review-based latent heat storage system. Energy Storage 2023, 5, est2.434. [Google Scholar] [CrossRef]
  57. Sundaramahalingam, A.; Jegadheeswaran, S.; Ponmurugan, M.; Sasikumar, C. Review on Thermal Energy Storage with Phase Change Materials and Its Applications. In Advances in Materials Research: Select Proceedings of ICAMR 2019; Springer: Singapore, 2021; Volume 5, pp. 543–554. [Google Scholar]
  58. Kumar, G.S.; Nagarajan, D.; Chidambaram, L.A.; Kumaresan, V.; Ding, Y.; Velraj, R. Role of PCM addition on stratification behaviour in a thermal storage tank—An experimental study. Energy 2016, 115, 1168–1178. [Google Scholar] [CrossRef]
  59. Langarón Cabello, J.M.; Pérez Masía, R.; López Rubio, A. Procedimiento de Encapsulación de PCMs. Patent PCT/ES2012/070456, 27 December 2012. [Google Scholar]
  60. Hashim, D.P. Three-Dimensional Carbon Nanotube Sponge Materials as Absorbers of Phase Change Materials. Patent 20220234895, 28 July 2022. [Google Scholar]
  61. Kirschner, T. System and Method for Producing Domestic Hot Water. Patent 20240110708, 4 April 2024. [Google Scholar]
  62. Singh, D.; Cingarapu, S.; Moravek, M.; Timofeeva, E.V. Nanoparticles for Heat Transfer and Thermal Energy Storage. Patent 20150307763, 29 October 2015. [Google Scholar]
  63. United Nations Population Division Countries in the World by Population (2024). Worldometer, 2023. Available online: https://www.worldometers.info/world-population/population-by-country/ (accessed on 2 May 2024).
  64. Yu, Z.; Wang, J.; Yan, Z.; Tuo, X.; Li, S.; Zhagn, G. Study on Improvement and Melting Performance of Phase Change Material Encapsulated Structure in Domestic Hot Water Tank. Hunan Daxue Xuebao/J. Hunan Univ. Nat. Sci. 2021, 48, 215–222. [Google Scholar] [CrossRef]
  65. Zhu, M.; Wang, Z.; Qi, H.; Sun, X.; Zhou, X. Experimental research and numerical simulation on the enhanced heat transfer mechanism of foamed copper to paraffin. Gongneng Cailiao/J. Funct. Mater. 2021, 52, 11195–11201. [Google Scholar] [CrossRef]
  66. Zhang, P.; Xiao, X.; Ma, Z.W. A review of the composite phase change materials: Fabrication, characterization, mathematical modeling and application to performance enhancement. Appl. Energy 2016, 165, 472–510. [Google Scholar] [CrossRef]
  67. Lin, Y.; Jia, Y.; Alva, G.; Fang, G. Review on thermal conductivity enhancement, thermal properties and applications of phase change materials in thermal energy storage. Renew. Sustain. Energy Rev. 2018, 82, 2730–2742. [Google Scholar] [CrossRef]
  68. Agyenim, F.; Hewitt, N.; Eames, P.; Smyth, M. A review of materials, heat transfer and phase change problem formulation for latent heat thermal energy storage systems (LHTESS). Renew. Sustain. Energy Rev. 2010, 14, 615–628. [Google Scholar] [CrossRef]
  69. Habibishandiz, M.; Saghir, M.Z. A critical review of heat transfer enhancement methods in the presence of porous media, nanofluids, and microorganisms. Therm. Sci. Eng. Prog. 2022, 30, 101267. [Google Scholar] [CrossRef]
  70. Gadhave, P.; Prabhune, C.; Pathan, F. Selection of phase change material for domestic water heating using multi criteria decision approach. Aust. J. Mech. Eng. 2020, 21, 295–315. [Google Scholar] [CrossRef]
  71. Zhang, S.; Mancin, S.; Pu, L. A review and prospective of fin design to improve heat transfer performance of latent thermal energy storage. J. Energy Storage 2023, 62, 106825. [Google Scholar] [CrossRef]
  72. Khademi, A.; Shank, K.; Mehrjardi, S.A.A.; Tiari, S.; Sorrentino, G.; Said, Z.; Chamkha, A.J.; Ushak, S. A brief review on different hybrid methods of enhancement within latent heat storage systems. J. Energy Storage 2022, 54, 105362. [Google Scholar] [CrossRef]
  73. Kamkari, B.; Groulx, D. Experimental investigation of melting behaviour of phase change material in finned rectangular enclosures under different inclination angles. Exp. Therm. Fluid Sci. 2018, 97, 94–108. [Google Scholar] [CrossRef]
  74. Merlin, K.; Delaunay, D.; Soto, J.; Traonvouez, L. Heat transfer enhancement in latent heat thermal storage systems: Comparative study of different solutions and thermal contact investigation between the exchanger and the PCM. Appl. Energy 2016, 166, 107–116. [Google Scholar] [CrossRef]
  75. Aramesh, M.; Shabani, B. Experimental evaluation of a self storage integrated evacuated tube solar thermal collector. J. Energy Storage 2023, 62, 106920. [Google Scholar] [CrossRef]
  76. Aramesh, M.; Shabani, B. Metal foams application to enhance the thermal performance of phase change materials: A review of experimental studies to understand the mechanisms. J. Energy Storage 2022, 50, 104650. [Google Scholar] [CrossRef]
  77. Shin, D.H.; Park, J.; Choi, S.H.; Ko, H.S.; Karng, S.W.; Shin, Y. A new type of heat storage system using the motion of phase change materials in an elliptical-shaped capsule. Energy Convers. Manag. 2019, 182, 508–519. [Google Scholar] [CrossRef]
  78. Asgari, M.; Javidan, M.; Nozari, M.; Asgari, A.; Ganji, D.D. Simulation of solidification process of phase change materials in a heat exchanger using branch-shaped fins. Case Stud. Therm. Eng. 2021, 25, 100835. [Google Scholar] [CrossRef]
  79. El-Sebaey, M.S.; El-Din, S.S.; El-Kholy, M.K. Heat transfer and fluid flow performance of an internally longitudinal finned tube: Numerical study and experimental validation. Int. J. Therm. Sci. 2024, 201, 109025. [Google Scholar] [CrossRef]
  80. Joybari, M.M.; Haghighat, F.; Seddegh, S.; Al-Abidi, A.A. Heat transfer enhancement of phase change materials by fins under simultaneous charging and discharging. Energy Convers. Manag. 2017, 152, 136–156. [Google Scholar] [CrossRef]
  81. Das, P.; Kar, S.P.; Sarangi, R.K. Review on thermal performance of heat exchanger using phase change material. Int. J. Energy Res. 2022, 46, 16208–16240. [Google Scholar] [CrossRef]
  82. Acır, A.; Emin Canlı, M. Investigation of fin application effects on melting time in a latent thermal energy storage system with phase change material (PCM). Appl. Therm. Eng. 2018, 144, 1071–1080. [Google Scholar] [CrossRef]
  83. Hosseini, M.J.; Ranjbar, A.A.; Rahimi, M.; Bahrampoury, R. Experimental and numerical evaluation of longitudinally finned latent heat thermal storage systems. Energy Build. 2015, 99, 263–272. [Google Scholar] [CrossRef]
  84. Kalbasi, R.; Salimpour, M.R. Constructal design of horizontal fins to improve the performance of phase change material rectangular enclosures. Appl. Therm. Eng. 2015, 91, 234–244. [Google Scholar] [CrossRef]
  85. Khan, Z.; Khan, Z.; Ghafoor, A. A review of performance enhancement of PCM based latent heat storage system within the context of materials, thermal stability and compatibility. Energy Convers. Manag. 2016, 115, 132–158. [Google Scholar] [CrossRef]
  86. Tavakoli, A.; Farzaneh-Gord, M.; Ebrahimi-Moghadam, A. Using internal sinusoidal fins and phase change material for performance enhancement of thermal energy storage systems: Heat transfer and entropy generation analyses. Renew. Energy 2023, 205, 222–237. [Google Scholar] [CrossRef]
  87. Mao, Q.; Li, Y.; Li, G.; Badiei, A. Study on the influence of tank structure and fin configuration on heat transfer performance of phase change thermal storage system. Energy 2021, 235, 121382. [Google Scholar] [CrossRef]
  88. Kabbara, M.; Groulx, D.; Joseph, A. Experimental investigations of a latent heat energy storage unit using finned tubes. Appl. Therm. Eng. 2016, 101, 601–611. [Google Scholar] [CrossRef]
  89. Hassan, A.K.; Abdulateef, J.; Mahdi, M.S.; Hasan, A.F. Experimental evaluation of thermal performance of two different finned latent heat storage systems. Case Stud. Therm. Eng. 2020, 21, 100675. [Google Scholar] [CrossRef]
  90. Hosseini, M.M.; Rahimi, A.B. Improving heat transfer in a triplex tube heat exchanger containing phase-change materials by modifications of length and position of fins. Sci. Iran. 2020, 27, 239–251. [Google Scholar] [CrossRef]
  91. Amagour, M.E.H.; Bennajah, M.; Rachek, A. Numerical investigation and experimental validation of the thermal performance enhancement of a compact finned-tube heat exchanger for efficient latent heat thermal energy storage. J. Clean. Prod. 2021, 280, 124238. [Google Scholar] [CrossRef]
  92. Amagour, M.E.H.; Rachek, A.; Bennajah, M.; Ebn Touhami, M. Experimental investigation and comparative performance analysis of a compact finned-tube heat exchanger uniformly filled with a phase change material for thermal energy storage. Energy Convers. Manag. 2018, 165, 137–151. [Google Scholar] [CrossRef]
  93. Mat, S.; Al-Abidi, A.A.; Sopian, K.; Sulaiman, M.Y.; Mohammad, A.T. Enhance heat transfer for PCM melting in triplex tube with internal–external fins. Energy Convers. Manag. 2013, 74, 223–236. [Google Scholar] [CrossRef]
  94. Li, J.; Abdulghani, Z.R.; Alghamdi, M.N.; Sharma, K.; Niyas, H.; Moria, H.; Arsalanloo, A. Effect of twisted fins on the melting performance of PCM in a latent heat thermal energy storage system in vertical and horizontal orientations: Energy and exergy analysis. Appl. Therm. Eng. 2023, 219, 119489. [Google Scholar] [CrossRef]
  95. Rogowski, M.; Andrzejczyk, R. Recent advances of selected passive heat transfer intensification methods for phase change material-based latent heat energy storage units: A review. Int. Commun. Heat Mass Transf. 2023, 144, 106795. [Google Scholar] [CrossRef]
  96. Zaidan, M.J.; Alhamdo, M.H. Effect of perforated and smooth fins on thermal performance of a latent heat energy system. J. Eng. Sustain. Dev. 2019, 23, 109–128. [Google Scholar] [CrossRef]
  97. Rahimi, M.; Ranjbar, A.A.; Ganji, D.D.; Sedighi, K.; Hosseini, M.J.; Bahrampoury, R. Analysis of geometrical and operational parameters of PCM in a fin and tube heat exchanger. Int. Commun. Heat Mass Transf. 2014, 53, 109–115. [Google Scholar] [CrossRef]
  98. Patel, J.R.; Rathod, M.K. Thermal performance enhancement of melting and solidification process of phase-change material in triplex tube heat exchanger using longitudinal fins. Heat Transf. 2019, 48, 483–501. [Google Scholar] [CrossRef]
  99. Yang, X.; Wang, X.; Liu, Z.; Luo, X.; Yan, J. Effect of fin number on the melting phase change in a horizontal finned shell-and-tube thermal energy storage unit. Sol. Energy Mater. Sol. Cells 2022, 236, 111527. [Google Scholar] [CrossRef]
  100. Kirincic, M.; Trp, A.; Lenic, K. Numerical evaluation of the latent heat thermal energy storage performance enhancement by installing longitudinal fins. J. Energy Storage 2021, 42, 103085. [Google Scholar] [CrossRef]
  101. Irbai’, A.S.I.; Najjar, Y.S.H. Enhancement of the melting process in the thermal energy storage system by using novel geometry. Numer. Heat Transf. Part A Appl. 2019, 76, 1006–1022. [Google Scholar] [CrossRef]
  102. Rana, S.; Zunaid, M.; Kumar, R. Enhancement of thermal energy storage in a phase change material heat exchanger having elliptical and circular tubes with & without fins. J. Energy Storage 2022, 56, 105856. [Google Scholar] [CrossRef]
  103. Liu, C.; Groulx, D. Experimental study of the phase change heat transfer inside a horizontal cylindrical latent heat energy storage system. Int. J. Therm. Sci. 2014, 82, 100–110. [Google Scholar] [CrossRef]
  104. Sekhar, Y.R.; Sharma, K.V.; Karupparaj, R.T.; Chiranjeevi, C. Heat transfer enhancement with Al2O3 nanofluids and twisted tapes in a pipe for solar thermal applications. Procedia Eng. 2013, 64, 1474–1484. [Google Scholar] [CrossRef]
  105. Castle, A. Twisted Tape Turbulators. Fuel Efficiency. 2024. Available online: https://www.fuelefficiencyllc.com/twisted-tape-turbulators/ (accessed on 6 February 2024).
  106. Sakhaei, S.A.; Valipour, M.S. Performance enhancement analysis of The flat plate collectors: A comprehensive review. Renew. Sustain. Energy Rev. 2019, 102, 186–204. [Google Scholar] [CrossRef]
  107. Sadhishkumar, S.; Balusamy, T. Performance improvement in solar water heating systems—A review. Renew. Sustain. Energy Rev. 2014, 37, 191–198. [Google Scholar] [CrossRef]
  108. Zaboli, M.; Saedodin, S.; Ajarostaghi, S.S.M.; Karimi, N. Recent Progress on Flat Plate Solar Collectors Equipped with Nanofluid and Turbulator: State of the Art; Springer: Berlin/Heidelberg, Germany, 2023; Volume 30. [Google Scholar]
  109. Khargotra, R.; Alam, T.; Thu, K.; András, K.; Siddiqui, T.U.; Singh, T. Influence of heat enhancement technique on the thermal performance of solar water heater for sustainable built environment. Start-of-the-art review. Sustain. Energy Technol. Assess. 2023, 57, 103293. [Google Scholar] [CrossRef]
  110. Jaisankar, S.; Radhakrishnan, T.K.; Sheeba, K.N. Experimental studies on heat transfer and friction factor characteristics of forced circulation solar water heater system fitted with helical twisted tapes. Sol. Energy 2009, 83, 1943–1952. [Google Scholar] [CrossRef]
  111. Hobbi, A.; Siddiqui, K. Experimental study on the effect of heat transfer enhancement devices in flat-plate solar collectors. Int. J. Heat Mass Transf. 2009, 52, 4650–4658. [Google Scholar] [CrossRef]
  112. Hamidia, E.; Ganesan, P.B.; Sharma, R.K.; Yong, K.W. Computational study of heat transfer enhancement using porous foams with phase change materials: A comparative review. Renew. Sustain. Energy Rev. 2023, 176, 113196. [Google Scholar] [CrossRef]
  113. Gaedtke, M.; Abishek, S.; Mead-Hunter, R.; King, A.J.C.; Mullins, B.J.; Nirschl, H.; Krause, M.J. Total enthalpy-based lattice Boltzmann simulations of melting in paraffin/metal foam composite phase change materials. Int. J. Heat Mass Transf. 2020, 155, 119870. [Google Scholar] [CrossRef]
  114. Majdi, H.S.; Abed, A.M.; Habeeb, L.J. Performance evaluation of a solar water heater integrated with built-In thermal energy storage via porous media. Front. Heat Mass Transf. 2021, 17, 1–10. [Google Scholar] [CrossRef]
  115. Zhao, C.Y.; Lu, W.; Tian, Y. Heat transfer enhancement for thermal energy storage using metal foams embedded within phase change materials (PCMs). Sol. Energy 2010, 84, 1402–1412. [Google Scholar] [CrossRef]
  116. Tian, Y.; Zhao, C.Y. A numerical investigation of heat transfer in phase change materials (PCMs) embedded in porous metals. Energy 2011, 36, 5539–5546. [Google Scholar] [CrossRef]
  117. Zhang, S.; Pu, L.; Mancin, S.; Ma, Z.; Xu, L. Experimental study on heat transfer characteristics of metal foam/paraffin composite PCMs in large cavities: Effects of material types and heating configurations. Appl. Energy 2022, 325, 119790. [Google Scholar] [CrossRef]
  118. Xiao, X.; Zhang, P.; Li, M. Effective thermal conductivity of open-cell metal foams impregnated with pure paraffin for latent heat storage. Int. J. Therm. Sci. 2014, 81, 94–105. [Google Scholar] [CrossRef]
  119. Zhu, M.; Wang, Z.; Sun, X.; Zhou, X. Experimental research on effect of copper metal foam proportion on paraffin wax melting and heat transfer mechanism under high cell density. Huagong Jinzhan/Chem. Ind. Eng. Prog. 2022, 41, 3203–3211. [Google Scholar] [CrossRef]
  120. Alam, M.T.; Raj, A.; Singh, L.K.; Gupta, A.K. Configurational assessment of solidification performance in a triplex-tube heat exchanger filled with composite phase change material. Appl. Therm. Eng. 2023, 230, 120814. [Google Scholar] [CrossRef]
  121. Wang, Z.; Zhang, H.; Dou, B.; Zhang, G.; Wu, W.; Zhou, X. Effect of copper metal foam proportion on heat transfer enhancement in the melting process of phase change materials. Appl. Therm. Eng. 2022, 201, 117778. [Google Scholar] [CrossRef]
  122. Yang, X.; Wei, P.; Cui, X.; Jin, L.; He, Y.-L. Thermal response of annuli filled with metal foam for thermal energy storage: An experimental study. Appl. Energy 2019, 250, 1457–1467. [Google Scholar] [CrossRef]
  123. Shankar Baruah, J.; Athawale, V.; Prasenjit, R.; Bhattacharya, A. Melting and energy storage characteristics of macro-encapsulated PCM-metal foam system. Int. J. Heat Mass Transf. 2022, 182, 121993. [Google Scholar] [CrossRef]
  124. Ghalambaz, M.; Chamkha, A.J.; Wen, D. Natural convective flow and heat transfer of Nano-Encapsulated Phase Change Materials (NEPCMs) in a cavity. Int. J. Heat Mass Transf. 2019, 138, 738–749. [Google Scholar] [CrossRef]
  125. Luo, K.; Ye, W.; Wang, Y.; Zeng, Z.; Liu, J.; Fei, H. Research progress of phase change energy storage in solar domestic hot water system. Taiyangneng Xuebao/Acta Energiae Solaris Sin. 2022, 43, 220–229. [Google Scholar] [CrossRef]
  126. Salunkhe, P.B.; Shembekar, P.S. A review on effect of phase change material encapsulation on the thermal performance of a system. Renew. Sustain. Energy Rev. 2012, 16, 5603–5616. [Google Scholar] [CrossRef]
  127. Navarro, L.; Barreneche, C.; Castell, A.; Redpath, D.A.G.; Griffiths, P.W.; Cabeza, L.F. High density polyethylene spheres with PCM for domestic hot water applications: Water tank and laboratory scale study. J. Energy Storage 2017, 13, 262–267. [Google Scholar] [CrossRef]
  128. Xu, B.; Chen, C.; Zhou, J.; Ni, Z.; Ma, X. Preparation of novel microencapsulated phase change material with Cu-Cu2O/CNTs as the shell and their dispersed slurry for direct absorption solar collectors. Sol. Energy Mater. Sol. Cells 2019, 200, 109980. [Google Scholar] [CrossRef]
  129. Xu, L.; Pu, L.; Zhang, S.; Ma, Z. Thermo-fluidic performance of microencapsulated phase change material slurry in thermal energy storage. J. Energy Storage 2021, 43, 103247. [Google Scholar] [CrossRef]
  130. Li, W.Q.; Guo, S.J.; Tan, L.; Liu, L.L.; Ao, W. Heat transfer enhancement of nano-encapsulated phase change material (NEPCM) using metal foam for thermal energy storage. Int. J. Heat Mass Transf. 2021, 166, 120737. [Google Scholar] [CrossRef]
  131. Ibáñez, M.; Cabeza, L.F.; Solé, C.; Roca, J.; Nogués, M. Modelization of a water tank including a PCM module. Appl. Therm. Eng. 2006, 26, 1328–1333. [Google Scholar] [CrossRef]
  132. Mehling, H.; Cabeza, L.F.; Hippeli, S.; Hiebler, S. PCM-module to improve hot water heat stores with stratification. Renew. Energy 2003, 28, 699–711. [Google Scholar] [CrossRef]
  133. Sun, V.; Asanakham, A.; Deethayat, T.; Kiatsiriroat, T. Performance analysis on combined heat and power of photovoltaic-thermal module integrated with phase change material-water storage. J. Energy Storage 2022, 47, 103614. [Google Scholar] [CrossRef]
  134. Punniakodi, B.M.S.; Senthil, R. A review on container geometry and orientations of phase change materials for solar thermal systems. J. Energy Storage 2021, 36, 102452. [Google Scholar] [CrossRef]
  135. Yan, Z.; Zhu, Y.; Liu, L.; Yu, Z.J.; Li, S.; Zhang, G. Performance enhancement of cylindrical latent heat storage units in hot water tanks via wavy design. Renew. Energy 2023, 218, 119282. [Google Scholar] [CrossRef]
  136. Quitiaquez, W.; Estupiñán-Campos, J.; Nieto-Londoño, C.; Quitiaquez, P. CFD Analysis of Heat Transfer Enhancement in a Flat-Plate Solar Collector/Evaporator with Different Geometric Variations in the Cross Section. Energies 2023, 16, 5755. [Google Scholar] [CrossRef]
  137. Wong, T.L.; Vallés, C.; Nasser, A.; Abeykoon, C. A critical experimental evaluation of hexagonal boron nitride, graphene oxide and graphite as thermally conductive fillers in organic PCMs. J. Energy Storage 2023, 72, 108523. [Google Scholar] [CrossRef]
  138. Hasib, A.M.M.G.; Rayegan, R.; Tao, Y.X. Investigation of using dispersed particle and branching heat exchanger in medium temperature thermal energy storage system to achieve maximum utilization of solar power. In Proceedings of the ASME International Mechanical Engineering Congress and Exposition, Proceedings (IMECE), San Diego, CA, USA, 15–21 November 2013; American Society of Mechanical Engineers (ASME), University of North Texas: Denton, TX, USA, 2013; Volume 8B. [Google Scholar]
  139. Sett, K.Y.; Mon, M.S. The effect of expanded graphite on the charging time of stearic acid phase change material in a hot water tank. ASEAN Eng. J. 2021, 11, 14–24. [Google Scholar] [CrossRef]
  140. Li, C.; Zhang, B.; Xie, B.; Zhao, X.; Chen, J.; Chen, Z.; Long, Y. Stearic acid/expanded graphite as a composite phase change thermal energy storage material for tankless solar water heater. Sustain. Cities Soc. 2019, 44, 458–464. [Google Scholar] [CrossRef]
  141. D’Oliveira, E.J.; Pereira, S.C.C.; Groulx, D.; Azimov, U. Thermophysical properties of Nano-enhanced phase change materials for domestic heating applications. J. Energy Storage 2022, 46, 103794. [Google Scholar] [CrossRef]
  142. Hu, Y.; Yang, J.; Tian, J.; Jia, L.; Yu, J.-S. Green and size-controllable synthesis of photoluminescent carbon nanoparticles from waste plastic bags. RSC Adv. 2014, 4, 47169–47176. [Google Scholar] [CrossRef]
  143. Hassan, T.A.; Rangari, V.K.; Jeelani, S. Mechanical and thermal properties of bio-based CaCO3/soybean-based hybrid unsaturated polyester nanocomposites. J. Appl. Polym. Sci. 2013, 130, 1442–1452. [Google Scholar] [CrossRef]
  144. Biswas, A.; Patra, A.K.; Sarkar, S.; Das, D.; Chattopadhyay, D.; De, S. Synthesis of highly magnetic iron oxide nanomaterials from waste iron by one-step approach. Colloids Surfaces A Physicochem. Eng. Asp. 2020, 589, 124420. [Google Scholar] [CrossRef]
  145. Rajarao, R.; Ferreira, R.; Fahandej Sadi, S.H.; Khanna, R.; Sahajwalla, V. Synthesis of silicon carbide nanoparticles by using electronic waste as a carbon source. Mater. Lett. 2014, 120, 65–68. [Google Scholar] [CrossRef]
  146. Rangari, V.K.; Apalangya, V.; Biswas, M.; Jeelani, S. Preparation and microscopic characterization of biobased nanoparticles from natural waste materials. Microsc. Microanal. 2017, 23, 1938–1939. [Google Scholar] [CrossRef]
  147. Mehryan, S.A.M.; Ghalambaz, M.; Sasani Gargari, L.; Hajjar, A.; Sheremet, M. Natural convection flow of a suspension containing nano-encapsulated phase change particles in an eccentric annulus. J. Energy Storage 2020, 28, 101236. [Google Scholar] [CrossRef]
  148. Agrawal, R.; Singh, K.D.P.; Paswan, M.K. Review on Enhancement of Thermal Conductivity of Phase Change Materials with Nano-Particle in Engineering Applications. Mater. Today Proc. 2020, 22, 1617–1627. [Google Scholar] [CrossRef]
  149. Teamah, H.M.; Teamah, M. Integration of phase change material in flat plate solar water collector: A state of the art, opportunities, and challenges. J. Energy Storage 2022, 54, 105357. [Google Scholar] [CrossRef]
  150. Cabeza, L.F.; Ibáñez, M.; Solé, C.; Roca, J.; Nogués, M. Experimentation with a water tank including a PCM module. Sol. Energy Mater. Sol. Cells 2006, 90, 1273–1282. [Google Scholar] [CrossRef]
  151. Xie, B.; Li, C.; Zhang, B.; Yang, L.; Xiao, G.; Chen, J. Evaluation of stearic acid/coconut shell charcoal composite phase change thermal energy storage materials for tankless solar water heater. Energy Built Environ. 2020, 1, 187–198. [Google Scholar] [CrossRef]
  152. Haillot, D.; Nepveu, F.; Goetz, V.; Py, X.; Benabdelkarim, M. High performance storage composite for the enhancement of solar domestic hot water systems: Part 2: Numerical system analysis. Sol. Energy 2012, 86, 64–77. [Google Scholar] [CrossRef]
  153. Sadiq, I.E.; Aljabai, S.; Karamallah, A.A. Effect of Al2O3/CuO Hybrid Nanoparticles Dispersion on Melting Process of PCM in a Triplex Tube Heat Storage. FME Trans. 2023, 51, 606–626. [Google Scholar] [CrossRef]
  154. Mandal, S.K.; Singh, P.K.; Kumar, S.; Mishra, S.K. Parametric investigation of CuO-doped charged nanofluid in solar water heater. Int. J. Environ. Sci. Technol. 2021, 18, 2855–2864. [Google Scholar] [CrossRef]
  155. Gorzin, M.; Hosseini, M.J.; Rahimi, M.; Bahrampoury, R. Nano-enhancement of phase change material in a shell and multi-PCM-tube heat exchanger. J. Energy Storage 2019, 22, 88–97. [Google Scholar] [CrossRef]
  156. Al-Kayiem, H.H.; Lin, S.C. Performance evaluation of a solar water heater integrated with a PCM nanocomposite TES at various inclinations. Sol. Energy 2014, 109, 82–92. [Google Scholar] [CrossRef]
  157. Rao, Z.; Wen, Y.; Liu, C. Enhancement of heat transfer of microcapsulated particles using copper particles and copper foam. Particuology 2018, 41, 85–93. [Google Scholar] [CrossRef]
  158. Christopher, S.; Parham, K.; Mosaffa, A.H.; Farid, M.M.; Ma, Z.; Thakur, A.K.; Xu, H.; Saidur, R. A critical review on phase change material energy storage systems with cascaded configurations. J. Clean. Prod. 2021, 283, 124653. [Google Scholar] [CrossRef]
  159. Gong, Z.-X.; Mujumdar, A.S. A New Solar Receiver Thermal Store for Space-Based Activities Using Multiple Composite Phase-Change Materials. J. Sol. Energy Eng. 1995, 117, 215–220. [Google Scholar] [CrossRef]
  160. Narasimhan, N.L. Assessment of latent heat thermal storage systems operating with multiple phase change materials. J. Energy Storage 2019, 23, 442–455. [Google Scholar] [CrossRef]
  161. Ali, H.M.; Rehman, T.-U.; Arıcı, M.; Said, Z.; Duraković, B.; Mohammed, H.I.; Kumar, R.; Rathod, M.K.; Buyukdagli, O.; Teggar, M. Advances in thermal energy storage: Fundamentals and applications. Prog. Energy Combust. Sci. 2024, 100, 101109. [Google Scholar] [CrossRef]
  162. Farid, M.M.; Kim, Y.; Kansawa, A. Thermal Performance of a Heat Storage Module Using PCM’s with Different Melting Temperature: Experimental. J. Energy Resour. Technol. 1990, 112, 125–131. [Google Scholar] [CrossRef]
  163. Kurnia, J.C.; Sasmito, A.P.; Jangam, S.V.; Mujumdar, A.S. Improved design for heat transfer performance of a novel phase change material (PCM) thermal energy storage (TES). Appl. Therm. Eng. 2013, 50, 896–907. [Google Scholar] [CrossRef]
  164. Aldoss, T.K.; Rahman, M.M. Comparison between the single-PCM and multi-PCM thermal energy storage design. Energy Convers. Manag. 2014, 83, 79–87. [Google Scholar] [CrossRef]
  165. Wang, J.; Ouyang, Y.; Chen, G. Experimental study on charging processes of a cylindrical heat storage capsule employing multiple-phase-change materials. Int. J. Energy Res. 2001, 25, 439–447. [Google Scholar] [CrossRef]
  166. Mazman, M.; Cabeza, L.F.; Mehling, H.; Nogues, M.; Evliya, H.; Paksoy, H.Ö. Utilization of phase change materials in solar domestic hot water systems. Renew. Energy 2009, 34, 1639–1643. [Google Scholar] [CrossRef]
  167. Lim, J.S.; Bejan, A.; Kim, J.H. Thermodynamic Optimization of Phase-Change Energy Storage Using Two or More Materials. J. Energy Resour. Technol. 1992, 114, 84–90. [Google Scholar] [CrossRef]
  168. Khor, J.O.; Sze, J.Y.; Li, Y.; Romagnoli, A. Overcharging of a cascaded packed bed thermal energy storage: Effects and solutions. Renew. Sustain. Energy Rev. 2020, 117, 109421. [Google Scholar] [CrossRef]
  169. Pu, L.; Zhang, S.; Xu, L.; Ma, Z.; Wang, X. Numerical study on the performance of shell-and-tube thermal energy storage using multiple PCMs and gradient copper foam. Renew. Energy 2021, 174, 573–589. [Google Scholar] [CrossRef]
  170. Rahimi, M.; Ardahaie, S.S.; Hosseini, M.J.; Gorzin, M. Energy and exergy analysis of an experimentally examined latent heat thermal energy storage system. Renew. Energy 2020, 147, 1845–1860. [Google Scholar] [CrossRef]
  171. Kasaeian, A.; Eshghi, A.T.; Sameti, M. A review on the applications of nanofluids in solar energy systems. Renew. Sustain. Energy Rev. 2015, 43, 584–598. [Google Scholar] [CrossRef]
  172. Kunwer, R.; Donga, R.K.; Kumar, R.; Singh, H. Thermal Characterization of Flat Plate Solar Collector Using Titanium Dioxide Nanofluid. Process Integr. Optim. Sustain. 2023, 7, 1333–1343. [Google Scholar] [CrossRef]
  173. Muhammad, M.J.; Muhammad, I.A.; Sidik, N.A.C.; Yazid, M.N.A.W.M.; Mamat, R.; Najafi, G. The use of nanofluids for enhancing the thermal performance of stationary solar collectors: A review. Renew. Sustain. Energy Rev. 2016, 63, 226–236. [Google Scholar] [CrossRef]
  174. Said, Z.; Hachicha, A.A.; Aberoumand, S.; Yousef, B.A.A.; Sayed, E.T.; Bellos, E. Recent advances on nanofluids for low to medium temperature solar collectors: Energy, exergy, economic analysis and environmental impact. Prog. Energy Combust. Sci. 2021, 84, 100898. [Google Scholar] [CrossRef]
  175. Kazaz, O.; Karimi, N.; Kumar, S.; Falcone, G.; Paul, M.C. Heat transfer characteristics of fluids containing paraffin core-metallic shell nanoencapsulated phase change materials for advanced thermal energy conversion and storage applications. J. Mol. Liq. 2023, 385, 122385. [Google Scholar] [CrossRef]
  176. Ali, N.; Bahman, A.M.; Aljuwayhel, N.F.; Ebrahim, S.A.; Mukherjee, S.; Alsayegh, A. Carbon-based nanofluids and their advances towards heat transfer applications—A review. Nanomaterials 2021, 11, 1628. [Google Scholar] [CrossRef] [PubMed]
  177. Said, Z.; Iqbal, M.; Mehmood, A.; Le, T.T.; Ali, H.M.; Cao, D.N.; Nguyen, P.Q.P.; Pham, N.D.K. Nanofluids-based solar collectors as sustainable energy technology towards net-zero goal: Recent advances, environmental impact, challenges, and perspectives. Chem. Eng. Process.-Process Intensif. 2023, 191, 109477. [Google Scholar] [CrossRef]
  178. Anish, R.; Mariappan, V.; Suresh, S. Experimental investigation on melting and solidification behaviour of erythritol in a vertical double spiral coil thermal energy storage system. Sustain. Cities Soc. 2019, 44, 253–264. [Google Scholar] [CrossRef]
  179. Korti, A.I.N.; Tlemsani, F.Z. Experimental investigation of latent heat storage in a coil in PCM storage unit. J. Energy Storage 2016, 5, 177–186. [Google Scholar] [CrossRef]
  180. Dinker, A.; Agarwal, M.; Agarwal, G.D. Experimental assessment on thermal storage performance of beeswax in a helical tube embedded storage unit. Appl. Therm. Eng. 2017, 111, 358–368. [Google Scholar] [CrossRef]
  181. Saydam, V.; Parsazadeh, M.; Radeef, M.; Duan, X. Design and experimental analysis of a helical coil phase change heat exchanger for thermal energy storage. J. Energy Storage 2019, 21, 9–17. [Google Scholar] [CrossRef]
  182. Rahimi, M.; Hosseini, M.J.; Gorzin, M. Effect of helical diameter on the performance of shell and helical tube heat exchanger: An experimental approach. Sustain. Cities Soc. 2019, 44, 691–701. [Google Scholar] [CrossRef]
  183. Olfian, H.; Ajarostaghi, S.S.M.; Ebrahimnataj, M. Development on evacuated tube solar collectors: A review of the last decade results of using nanofluids. Sol. Energy 2020, 211, 265–282. [Google Scholar] [CrossRef]
  184. Sankar, S.S.K.; Murugan, A.; Rahman, A.; Illyas, M.; Ramalingam, R.D.; Marquez, F.P.G.; Athikesavan, M.M. Recent advancements in flat plate solar collector using phase change materials and nanofluid: A review. Environ. Sci. Pollut. Res. 2023, 30, 88366–88386. [Google Scholar] [CrossRef] [PubMed]
  185. Olfian, H.; Mousavi Ajarostaghi, S.S.; Ebrahimnataj, M.; Farhadi, M.; Arıcı, M. On the thermal performance of evacuated tube solar collector integrated with phase change material. Sustain. Energy Technol. Assess. 2022, 53, 20–23. [Google Scholar] [CrossRef]
  186. Mahian, O.; Kolsi, L.; Amani, M.; Estellé, P.; Ahmadi, G.; Kleinstreuer, C.; Marshall, J.S.; Majid, S. Recent advances in modeling and simulation of nanofluid flows-Part I: Fundamentals and theory. Phys. Rep. 2019, 790, 1–48. [Google Scholar] [CrossRef]
  187. Palacio, M.; Rincón, A.; Carmona, M. Experimental comparative analysis of a flat plate solar collector with and without PCM. Sol. Energy 2020, 206, 708–721. [Google Scholar] [CrossRef]
  188. Tang, R.; Cheng, Y.; Wu, M.; Li, Z.; Yu, Y. Experimental and modeling studies on thermosiphon domestic solar water heaters with flat-plate collectors at clear nights. Energy Convers. Manag. 2010, 51, 2548–2556. [Google Scholar] [CrossRef]
  189. Papadimitratos, A.; Sobhansarbandi, S.; Pozdin, V.; Zakhidov, A.; Hassanipour, F. Evacuated tube solar collectors integrated with phase change materials. Sol. Energy 2016, 129, 10–19. [Google Scholar] [CrossRef]
  190. Sardarabadi, M.; Passandideh-Fard, M.; Maghrebi, M.-J.; Ghazikhani, M. Experimental study of using both ZnO/water nanofluid and phase change material (PCM) in photovoltaic thermal systems. Sol. Energy Mater. Sol. Cells 2017, 161, 62–69. [Google Scholar] [CrossRef]
  191. Lin, S.C.; Al-Kayiem, H.H.; Bin Aris, M.S. Experimental Investigation on the Performance Enhancement of Integrated PCM-Flat Plate Solar Collector. J. Appl. Sci. 2012, 12, 2390–2396. [Google Scholar] [CrossRef]
  192. Ahmadlouydarab, M.; Ebadolahzadeh, M.; Ali, H.M. Effects of utilizing nanofluid as working fluid in a lab-scale designed FPSC to improve thermal absorption and efficiency. Phys. A Stat. Mech. Appl. 2020, 540, 123109. [Google Scholar] [CrossRef]
  193. Said, Z.; Saidur, R.; Sabiha, M.A.; Hepbasli, A.; Rahim, N.A. Energy and exergy efficiency of a flat plate solar collector using pH treated Al2O3 nanofluid. J. Clean. Prod. 2016, 112, 3915–3926. [Google Scholar] [CrossRef]
  194. Chaji, H.; Ajabshirchi, Y.; Esmaeilzadeh, E.; Heris, S.Z.; Hedayatizadeh, M.; Kahani, M. Experimental study on thermal efficiency of flat plate solar collector using TiO2/water nanofluid. Mod. Appl. Sci. 2013, 7, 60–69. [Google Scholar] [CrossRef]
  195. Aggarwal, S.; Kumar, R.; Kumar, S.; Bhatnagar, M.; Kumar, P. Computational fluid dynamics based analysis for optimization of various thermal enhancement techniques used in evacuated tubes solar collectors: A review. Mater. Today Proc. 2021, 46, 8700–8707. [Google Scholar] [CrossRef]
  196. Eltaweel, M.; Abdel-Rehim, A.A.; Attia, A.A.A. Energetic and exergetic analysis of a heat pipe evacuated tube solar collector using MWCNT/water nanofluid. Case Stud. Therm. Eng. 2020, 22, 100743. [Google Scholar] [CrossRef]
  197. Kazemian, A.; Salari, A.; Ma, T.; Lu, H. Application of hybrid nanofluids in a novel combined photovoltaic/thermal and solar collector system. Sol. Energy 2022, 239, 102–116. [Google Scholar] [CrossRef]
  198. Khodadadi, M.; Sheikholeslami, M. Heat transfer efficiency and electrical performance evaluation of photovoltaic unit under influence of NEPCM. Int. J. Heat Mass Transf. 2022, 183, 122232. [Google Scholar] [CrossRef]
  199. Tabarhoseini, S.M.; Sheikholeslami, M. Entropy generation and thermal analysis of nanofluid flow inside the evacuated tube solar collector. Sci. Rep. 2022, 12, 1380. [Google Scholar] [CrossRef]
  200. Ghaderian, J.; Che Sidik, N.A.; Kasaeian, A.; Ghaderian, S.; Okhovat, A.; Pakzadeh, A.; Samion, S.; Yahya, W.J. Performance of copper oxide/distilled water nanofluid in evacuated tube solar collector (ETSC) water heater with internal coil under thermosyphon system circulations. Appl. Therm. Eng. 2017, 121, 520–536. [Google Scholar] [CrossRef]
  201. Al-Mashat, S.M.S.; Hasan, A.A. Evaluation of Convective Heat Transfer and Natural Circulation in an Evacuated Tube Solar Collector. J. Eng. 2013, 19, 613–628. [Google Scholar] [CrossRef]
  202. Mahbubul, I.M.; Khan, M.M.A.; Ibrahim, N.I.; Ali, H.M.; Al-Sulaiman, F.A.; Saidur, R. Carbon nanotube nanofluid in enhancing the efficiency of evacuated tube solar collector. Renew. Energy 2018, 121, 36–44. [Google Scholar] [CrossRef]
  203. Daghigh, R.; Zandi, P. Improving the performance of heat pipe embedded evacuated tube collector with nanofluids and auxiliary gas system. Renew. Energy 2019, 134, 888–901. [Google Scholar] [CrossRef]
  204. Kumar, J.; Kaushal, R. Experimental analysis of heat pipe based evacuated tube solar collector using graphene/ ethylene glycol-water nanofluids. Energy Sources Part A Recover. Util. Environ. Eff. 2020, 1–19. [Google Scholar] [CrossRef]
  205. Ghaderian, J.; Sidik, N.A.C. An experimental investigation on the effect of Al2O3/distilled water nanofluid on the energy efficiency of evacuated tube solar collector. Int. J. Heat Mass Transf. 2017, 108, 972–987. [Google Scholar] [CrossRef]
  206. Zhu, F.; Zhang, C.; Gong, X. Numerical analysis on the energy storage efficiency of phase change material embedded in finned metal foam with graded porosity. Appl. Therm. Eng. 2017, 123, 256–265. [Google Scholar] [CrossRef]
  207. Sathyamurthy, R.; Muhammad Ali, H.; Said, Z.; Kabeel, A.E.; El-Sebaey, M.S.; Gopalsamy, S.; Nagaraj, M.; Almasoud, N.; Alomar, T.S. Enhancing solar still thermal performance: The role of surface coating and thermal energy storage in repurposed soda cans. J. Energy Storage 2024, 77, 109807. [Google Scholar] [CrossRef]
  208. Ghalambaz, M.; Shirivand, H.; Ayoubloo, K.A.; Mehryan, S.A.M.; Obai, Y.; Talebizadehsardari, P.; Yaïci, W. The Thermal Charging Performance of Finned Conical Thermal Storage System Filled with Nano-Enhanced Phase Change Material. Molecules 2021, 26, 1605. [Google Scholar] [CrossRef] [PubMed]
  209. Nakhchi, M.E.; Hatami, M.; Rahmati, M. A numerical study on the effects of nanoparticles and stair fins on performance improvement of phase change thermal energy storages. Energy 2021, 215, 119112. [Google Scholar] [CrossRef]
  210. Li, W.; Wang, Y.-H.; Kong, C.-C. Experimental study on melting/solidification and thermal conductivity enhancement of phase change material inside a sphere. Int. Commun. Heat Mass Transf. 2015, 68, 276–282. [Google Scholar] [CrossRef]
  211. Asker, M.; Alptekin, E.; Akif Ezan, M.; Ganjehsarabi, H. Entropy generation analysis of multilayer PCM slabs integrated with fins. Int. J. Exergy 2018, 26, 154–169. [Google Scholar] [CrossRef]
  212. Fan, R.; Xu, B.; Shi, L.; Zheng, N.; Sun, Z. A scalable phase change material-based system enhanced by multi-walled carbon nanotubes and fins for efficient solar water heating applications. J. Energy Storage 2023, 72, 108791. [Google Scholar] [CrossRef]
  213. Li, Z.; Shahsavar, A.; Al-Rashed, A.A.; Talebizadehsardari, P. Effect of porous medium and nanoparticles presences in a counter-current triple-tube composite porous/nano-PCM system. Appl. Therm. Eng. 2020, 167, 114777. [Google Scholar] [CrossRef]
  214. Mhiri, H.; Jemni, A.; Sammouda, H. Numerical and experimental investigations of melting process of composite material (nanoPCM/carbon foam) used for thermal energy storage. J. Energy Storage 2020, 29, 101167. [Google Scholar] [CrossRef]
Figure 1. The structural framework of this review.
Figure 1. The structural framework of this review.
Energies 17 02350 g001
Figure 2. Methodology used to search for information in Scopus.
Figure 2. Methodology used to search for information in Scopus.
Energies 17 02350 g002
Figure 3. Keyword co-occurrence network in heat transfer enhancement literature for latent heat thermal storage.
Figure 3. Keyword co-occurrence network in heat transfer enhancement literature for latent heat thermal storage.
Energies 17 02350 g003
Figure 4. The trend of annual document publication in Scopus.
Figure 4. The trend of annual document publication in Scopus.
Energies 17 02350 g004
Figure 5. Global co-authorship network map in heat transfer enhancement for latent heat thermal storage research.
Figure 5. Global co-authorship network map in heat transfer enhancement for latent heat thermal storage research.
Energies 17 02350 g005
Figure 6. Heat transfer enhancement methods employed in this review.
Figure 6. Heat transfer enhancement methods employed in this review.
Energies 17 02350 g006
Figure 8. Total melting time for various fin numbers [99] (Copyright © 2021 Elsevier B.V.).
Figure 8. Total melting time for various fin numbers [99] (Copyright © 2021 Elsevier B.V.).
Energies 17 02350 g008
Figure 9. Different configurations about the use of porous media [120] (Copyright © 2013 Elsevier Ltd.).
Figure 9. Different configurations about the use of porous media [120] (Copyright © 2013 Elsevier Ltd.).
Energies 17 02350 g009
Figure 10. Various configurations of PCM encapsulation [126] (Copyright © 2012 Elsevier Ltd.).
Figure 10. Various configurations of PCM encapsulation [126] (Copyright © 2012 Elsevier Ltd.).
Energies 17 02350 g010
Figure 11. Geometry changed by Yan et al. [135] (Copyright © 2023 Elsevier Ltd.): (a) cylindrical latent heat storage unit without waves (CLHSU-S) and without waves (CLHSU-W); (b) computational domain of the CLHSU-W.
Figure 11. Geometry changed by Yan et al. [135] (Copyright © 2023 Elsevier Ltd.): (a) cylindrical latent heat storage unit without waves (CLHSU-S) and without waves (CLHSU-W); (b) computational domain of the CLHSU-W.
Energies 17 02350 g011
Figure 12. Different geometries [136] (CC by 4.0). (a) Three-leaf clover; (b) hexagonal; (c) flower; (d) internal circular section with a flower shape in the external profile; (e) four-leaf clover.
Figure 12. Different geometries [136] (CC by 4.0). (a) Three-leaf clover; (b) hexagonal; (c) flower; (d) internal circular section with a flower shape in the external profile; (e) four-leaf clover.
Energies 17 02350 g012
Figure 13. Operation of energy storage for various phase change materials by (a) Christopher et al. [158] (Copyright © 2021 Elsevier Ltd.); (b) Kurnia et al. [163] (Copyright © 2012 Elsevier Ltd.).
Figure 13. Operation of energy storage for various phase change materials by (a) Christopher et al. [158] (Copyright © 2021 Elsevier Ltd.); (b) Kurnia et al. [163] (Copyright © 2012 Elsevier Ltd.).
Energies 17 02350 g013
Figure 14. Different geometries coils. (a) Simple helicoidal coil; (b) non-equidistantly spaced helical coil; (c) helical coil with a variable pitch; (d) complex helicoidal coils, red (hot fluid) and blue (cold fluid) [95] (CC by 4.0).
Figure 14. Different geometries coils. (a) Simple helicoidal coil; (b) non-equidistantly spaced helical coil; (c) helical coil with a variable pitch; (d) complex helicoidal coils, red (hot fluid) and blue (cold fluid) [95] (CC by 4.0).
Energies 17 02350 g014aEnergies 17 02350 g014b
Figure 15. Published articles about nanofluids in the literature by Muhamude et al. [1] (CC by 4.0).
Figure 15. Published articles about nanofluids in the literature by Muhamude et al. [1] (CC by 4.0).
Energies 17 02350 g015
Figure 16. Different nanoparticles and fluids used to create hybrid nanofluids [1] (CC by 4.0).
Figure 16. Different nanoparticles and fluids used to create hybrid nanofluids [1] (CC by 4.0).
Energies 17 02350 g016
Figure 17. Different approaches are used to simulate nanofluids in various applications [69] (Copyright © 2022 Elsevier Ltd.).
Figure 17. Different approaches are used to simulate nanofluids in various applications [69] (Copyright © 2022 Elsevier Ltd.).
Energies 17 02350 g017
Figure 18. Types of solar collectors: (a) flat plate solar collector [188] (Copyright © 2010 Elsevier Ltd.); (b) evacuated tube solar collectors [189] (Copyright © 2016 Elsevier Ltd.); (c) photovoltaic/thermal solar collector [190] (Copyright © 2016 Elsevier B.V.).
Figure 18. Types of solar collectors: (a) flat plate solar collector [188] (Copyright © 2010 Elsevier Ltd.); (b) evacuated tube solar collectors [189] (Copyright © 2016 Elsevier Ltd.); (c) photovoltaic/thermal solar collector [190] (Copyright © 2016 Elsevier B.V.).
Energies 17 02350 g018
Table 1. Impactful journals on heat transfer enhancement for latent heat thermal storage research.
Table 1. Impactful journals on heat transfer enhancement for latent heat thermal storage research.
JournalsTotal Quantity
Journal of energy storage22
Applied thermal engineering11
Renewable and sustainable energy reviews9
Renewable energy6
Energy conversion and management5
Energies3
Applied energy3
International journal of heat and mass transfer3
Solar energy3
International journal of energy research3
International communications in heat and mass transfer3
Energy2
Environmental science and pollution research2
Journal of cleaner production2
Materials today: proceedings2
Case studies in thermal engineering2
Progress in energy and combustion science2
Table 2. Most relevant research on fins in latent heat thermal storage.
Table 2. Most relevant research on fins in latent heat thermal storage.
AuthorPCM/HTFHeat Exchanger (HE)Type Study 3Focus StudyResults
Rahimi et al. [97]RT35/H2ORectangular tubular heat exchangerEMelting and solidification process
  • Solidification time is more affected than melting time.
  • Increasing the flow rate can decrease both times.
  • A better benefit is generated by using an inlet temperature of 50 to 60 °C.
Patel and Rathod [98]RT50/H2OTriplex tube heat exchanger (TTHX)NMelting and solidification process
  • Numerical study proves that the melting process can be enhanced, since conduction is dominant.
  • Using internal and external fins (Figure 7c) can further help to reduce the melting time.
Shank et al. [43]RT55/H2OLatent Heat Thermal Energy Storage (LHTES) systemEFins behavior in a LHTS using two configurations (10 annular fins and 20 annular fins).
  • Shorter charging time and higher stored energy occur when the charging temperature is high. If the flow rate increases, the charging and discharging period decreases (10 annular fins).
  • Shorter charging and discharging time compared to the anterior configuration due to the larger heat transfer area (20 annular fins).
Yang et al. [99]PCM 1,2 Horizontal shell-and-tube TES unitNMelting process
  • PCM melting time can be significantly reduced from 6 to 52 fins in a specific volume (Figure 8).
Kirincic et al. [100]RT25/H2OShell-and-tubeN/EMelting and solidification process
  • The fins significantly enhance radial heat transfer, reducing melting time by 52% and solidification time by 43%.
  • Faster storage rate.
Irbai’ et al. [101]Paraffin wax/H2O--NMelting process
  • The novel geometry enhanced the melting process of a TES system. PCM can melt in 900 s, three times faster than a conventional longitudinal fin system.
Youssef et al. [25]A-16/A mixture
f glycol (25%)—water
Indirect solar-assisted heat pump test systemN/EEnhancing a solar thermal system performance
  • The spiral-wired tubes can enhance thermal conductivity and allow free movement of the PCM during the melting process.
  • In the numerical study, the charging times are faster than the discharging times because of the contributions of convection and the buoyancy effect generated on the PCM side.
  • HTF charging temperature and flow rate can affect the charging and discharging processes.
Rana et al. [102]Gallium 2HE with multiple elliptical and circular tubesNThermal performance of a HE
  • Enhanced thermal performance.
  • Melting time is reduced with the use of fins. The more fins, the better the melting time.
  • Cylindrical tubes can have better heat transfer than elliptical tubes.
Liu and Groulx [103]Lauric acid/H2OHorizontal cylindrical latent heat energy storage system (LHESS)EMelting and solidification process
  • HTF inlet temperature can affect the complete PCM melting time, while HTF flow rates are the least affected.
  • Angled fins show a lower melting time than straight fins when the HTF inlet temperature is 50 °C.
  • If the temperature rises, neither fin has a significant enhancement difference.
1 PCM is not specified/disclosed. 2 HTF is no specified/disclosed. 3 Type of study: N = numerical; and E = experimental.
Table 4. Nanoparticles consisting of industrial waste materials [141].
Table 4. Nanoparticles consisting of industrial waste materials [141].
AuthorWaste MaterialsNanoparticle
Hu et al. [142]Waste plastic bagsCarbon nanoparticles
Hassan et al. [143]Eggshell powderBiobased calcium carbonate nanoparticles
Biswas et al. [144]Waste ironMagnetic iron oxide nanoparticles
Rajarao et al. [145]Silicon dioxide and electronic waste compact discsSilicon carbide nanoparticles
Rangari et al. [146]Egg, mussel, and quahog shellsBiobased nanoparticles
Table 5. Research covering composite phase change materials in the literature.
Table 5. Research covering composite phase change materials in the literature.
AuthorPCM/Nanoparticle/HTFType Study 1Heat ExchangerResults
Haillot et al. [152]RT65/Compressed expanded natural graphite (CENG)/H2ON/EFlat plate solar collector
  • The system’s efficiency is maximized during the summer compared to the winter.
  • Adding the CPCM can maximize the benefits to the system despite the winter losses.
Sadiq et al. [153]Paraffin/Hybrid nanoparticle of CuO y Al2O3/H2ON/ETriplex tube heat storage
  • By increasing the inlet temperature, the melting time decreases; the same happens when the mass flow rate of the system is increased.
  • Increasing the fraction of nano-additives (0.4–3.2%) can reduce the system’s charging period (10–19%, respectively).
  • Theoretical efficiency also increases with increasing inlet temperature.
Nedjem et al. [55]1-tetradecanol/Graphene nanoplatelets (GNP)/H2ONShell and Tube Latent Thermal Storage Unit
  • The melting time is reduced at higher GNP concentrations.
  • In the discharge process, the solidification time decreases at lower GNP amounts.
  • The stored energy decreases with increasing nanoparticle concentration.
Mandal et al. [154]Paraffin/Nano-cupric oxide (CuO) nanoparticles/H2ONFlat plate solar collector
  • CPCM can efficiently increase heat transfer by its thermal conductivity.
  • Adding the nanoparticles in PCM enhanced the thermal conductivity and thermal diffusivity.
Gorzin et al. [155]RT50/Cooper nanoparticles/H2ONMulti-shell and tube exchanger
  • Nanoparticles significantly reduce the solidification time.
  • Increasing the mass fraction of Cu can enhance the reduction of solidification time.
Al-Kayiem et al. [156]Paraffin wax/Cooper nanoparticles/H2OEFlat plate solar collector with built-in TES
  • The system’s performance using a 10° collector tilt angle and nanoparticles enhanced by 0.9% compared to PCM alone after 24 h. However, they recommend experimenting with various flow rates.
1 Type of study: N = numerical and E = experimental.
Table 7. Studies on the use of nanofluids in flat plate solar collectors.
Table 7. Studies on the use of nanofluids in flat plate solar collectors.
AuthorNanofluid Based onType of StudyResults
Kunwer et al. [172]Titanium dioxide (TiO2)/TherminolNumerical/Experimental
It increases the thermal efficiency and friction factor by 4% of the TiO2 proportion.
The thermal efficiency can be increased depending on the working fluid as used and the Reynolds number increase.
Ahmadlouydarab et al. [192]TiO2/Purified waterLab-scale
Significant increase in efficiency for different volume fractions of TiO2 nanoparticles (0.1% to 5%). For a volume fraction of 5%, there was an efficiency increase of 45%.
Increased volume fraction allowed for better heat absorption.
Said et al. [193]Al2O3/H2OExperimental
Fifty percent increase in heat transfer coefficient for nanoparticle concentrations of 0.1 and 0.3% by volume (size 13 nm).
At a mass flow rate of 1.5 kg/min, energy efficiency can be increased to 83.5%.
Chaji et al. [194]TiO2/H2OExperimental
Nanoparticles enhanced efficiency compared to the base fluid.
Efficiency decreases with increasing mass flow rate.
Table 9. Different hybrid methods found in the literature review.
Table 9. Different hybrid methods found in the literature review.
Hybrid MethodAuthorMaterialsType Study 3PCM/HTFResults
Fins and nanoparticlesGhalambaz et al. [208]Copper fins/GO, Al2O3, TiO2, Cu and Ag nanoparticlesNCoconut oil 2
The shell’s aspect ratio and the fin tilt degree can significantly influence the charging time.
Reversing the conical shell shape and incorporating a 4% nanoparticle volume fraction can further improve charging time.
Nakhchi et al. [209]Stair fins/CuO nanoparticlesNLauric acid 2
Incorporating PCM with nanoparticles and fins enhanced heat transfer and melting process efficiency.
Nanoparticles augment thermal conductivity, while fins enhance energy storage capacity.
Nanoparticles and encapsulationLi et al. [210]Sphere glass shall/aluminum powderEParaffin/Water Bath
The presence of powder sediments facilitates significant enhancements in thermal conductivity, melting, and solidification processes, thereby accelerating heat transfer at the bottom.
The sphere allows a melting of the material at the top.
Encapsulation and porous mediaLi et al. [130]Polystyrene nanoencapsulation/cooper metal foamN/EOctadecane 2
The metallic foam helps enhance heat transfer through heat conduction.
Nano-encapsulation allows for better heat storage.
M-PCMs and finsAsker et al. [211]Aluminum finsNRT30, RT40 and RT50 2
Fin spacing and length play a key role in the melting time of M-PCMs.
Porous media and nanoparticlesFan et al. [212]Melamine foam/multi-walled carbon nanotubeN/EPolyethylene glycol (PEG) 2
Light absorption is enhanced due to the system’s output temperature of 79 °C.
Heat storage and efficiency were increased.
The fins facilitate rapid heat transfer in the CPCM, enhancing energy storage efficiency by 89.2%. This surpasses the efficiency of flat plate and tubular collectors.
Li et al. [213]Cooper nanoparticles/metal foamNPCM 1/H2O
Incorporating 5% nanoparticles reduced solidification and melting times by 25.9% and 28.2%, respectively.
Introducing 95% porosity further decreased charging and discharging times by 83.7% and 88.2%, respectively.
Combining both techniques resulted in negligible time reductions compared to PM.
Mhiri et al. [214]Graphite nanoparticles/carbon foamN/ERT60 2
It improves PCM’s thermal reliability and conductivity while preventing material leakage and increasing the melting speed.
Fins, nanoparticles, encapsulation, and geometry variationYu et al. [64]Fin/expanded graphiteNPCM 1,2
The melting time is reduced, and performance increases when using an inverted conical vessel compared to a typical cylindrical vessel.
Combining both vessels (conical and inverted conical) can enhance heat storage capacity.
1 PCM is not specified/disclosed. 2 HTF is not specified/disclosed. 3 Type of study: N = numerical and E = experimental.
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content.

Share and Cite

MDPI and ACS Style

Berrocal, D.I.; Blandon Rodriguez, J.; Ortega Del Rosario, M.D.L.A.; Harris, I.; James Rivas, A.M. Heat Transfer Enhancements Assessment in Hot Water Generation with Phase Change Materials (PCMs): A Review. Energies 2024, 17, 2350. https://doi.org/10.3390/en17102350

AMA Style

Berrocal DI, Blandon Rodriguez J, Ortega Del Rosario MDLA, Harris I, James Rivas AM. Heat Transfer Enhancements Assessment in Hot Water Generation with Phase Change Materials (PCMs): A Review. Energies. 2024; 17(10):2350. https://doi.org/10.3390/en17102350

Chicago/Turabian Style

Berrocal, Diana Isabel, Juan Blandon Rodriguez, Maria De Los Angeles Ortega Del Rosario, Itamar Harris, and Arthur M. James Rivas. 2024. "Heat Transfer Enhancements Assessment in Hot Water Generation with Phase Change Materials (PCMs): A Review" Energies 17, no. 10: 2350. https://doi.org/10.3390/en17102350

Note that from the first issue of 2016, this journal uses article numbers instead of page numbers. See further details here.

Article Metrics

Back to TopTop