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Review

A Critical Review on the Development of Ionic Liquids-Based Nanofluids as Heat Transfer Fluids for Solar Thermal Energy

1
Department of Mathematical Sciences, University of South Carolina Aiken, Aiken, SC 29801, USA
2
The G.W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA
3
Department of Aerospace Engineering, Texas A&M University, College Station, TX 77843, USA
4
Department of Mechanical Engineering, University of South Carolina, Columbia, SC 29208, USA
5
Department of Mechanical Engineering, Bangladesh University of Engineering & Technology (BUET), Dhaka 1000, Bangladesh
*
Author to whom correspondence should be addressed.
Equal contribution.
Processes 2021, 9(5), 858; https://doi.org/10.3390/pr9050858
Submission received: 14 April 2021 / Revised: 27 April 2021 / Accepted: 30 April 2021 / Published: 13 May 2021
(This article belongs to the Section Energy Systems)

Abstract

In recent years, solar thermal energy (STE) has attracted energy researchers because of its higher efficacy compared to the photovoltaic solar cell. STE is one of the forms of solar energy whereby heat is transferred via a secondary medium called heat transfer fluids (HTFs). Therefore, the overall performance of STE depends on the thermophysical properties and thermal performance of the HTFs. Traditional HTFs suffer from low decomposition temperature, high melting point, and higher vapor pressure. To overcome these limitations, researchers have recently begun working on new HTFs for STE. Ionic liquids (ILs) are considered as a potential candidate for the next generation of HTFs because of their enhanced thermophysical properties, such as thermal stability at high temperature, insignificant vapor pressure, and high ionic conductivity. In addition, thermophysical properties and thermal performance of ILs can be further enhanced by dispersing nanoparticles, which is one of the emerging research interests to improve the efficiency of the solar thermal system. This paper summarizes the recent study of ILs-based nanofluids as HTFs. These summaries are divided into two sections (i) thermophysical properties studies, such as density, viscosity, thermal conductivity, and heat capacity, and (ii) thermal performance studies such as natural convection and forced convection. Synthesis of ILs-based nanofluids and thermophysical properties measurement techniques are also discussed. Based on these state-of-the-art summaries, we offer recommendations for potential future research direction for ILs-based nanofluids.
Keywords: ionic liquids (ILs); ILs-based nanofluids; density; viscosity; specific heat; thermal conductivity; heat transfer coefficient ionic liquids (ILs); ILs-based nanofluids; density; viscosity; specific heat; thermal conductivity; heat transfer coefficient

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MDPI and ACS Style

Paul, T.C.; Tikadar, A.; Mahamud, R.; Salman, A.S.; Morshed, A.K.M.M.; Khan, J.A. A Critical Review on the Development of Ionic Liquids-Based Nanofluids as Heat Transfer Fluids for Solar Thermal Energy. Processes 2021, 9, 858. https://doi.org/10.3390/pr9050858

AMA Style

Paul TC, Tikadar A, Mahamud R, Salman AS, Morshed AKMM, Khan JA. A Critical Review on the Development of Ionic Liquids-Based Nanofluids as Heat Transfer Fluids for Solar Thermal Energy. Processes. 2021; 9(5):858. https://doi.org/10.3390/pr9050858

Chicago/Turabian Style

Paul, Titan C., Amitav Tikadar, Rajib Mahamud, Azzam S. Salman, A. K. M. Monjur Morshed, and Jamil A. Khan. 2021. "A Critical Review on the Development of Ionic Liquids-Based Nanofluids as Heat Transfer Fluids for Solar Thermal Energy" Processes 9, no. 5: 858. https://doi.org/10.3390/pr9050858

APA Style

Paul, T. C., Tikadar, A., Mahamud, R., Salman, A. S., Morshed, A. K. M. M., & Khan, J. A. (2021). A Critical Review on the Development of Ionic Liquids-Based Nanofluids as Heat Transfer Fluids for Solar Thermal Energy. Processes, 9(5), 858. https://doi.org/10.3390/pr9050858

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