Multi-Ejector Concept: A Comprehensive Review on its Latest Technological Developments
Abstract
:1. Introduction
- The government subsidies has led “CO2 only” heat pump units for domestic hot water (DHW) purposes to become standard in Japan;
- Transcritical R744 solutions are gaining ever-growing attraction in industrial refrigeration applications featuring large cooling loads [4].
2. Multi-Ejector Concept
3. Supermarket Applications
3.1. Evolution of System Layout
3.2. Evolution of Multi-Ejector Equipped System Layout
3.3. Multi-Ejector Based Solutions without Integration with Air Conditioning Unit
3.3.1. Technological Aspects
- Significantly decreasing the compressor discharge temperature. This is shown in Figure 12, in which curve refers to the typical operating conditions of an overfed evaporator, whereas curve b and c are related to two conventional running modes of dry-expansion evaporators. Therefore, these results highlight considerable benefits to the lifetime of the lubricant, components on the discharge line and de-superheater for heat recovery;
- Improved protection against liquid in the compressor suction manifolds thanks to both the adopted active methods with the purpose of limiting the liquid level and the MP liquid receiver;
- A reduction in total installed swept volume in relation to a single compression system;
- An enhanced overall energy efficiency at outdoor temperatures up to between 40 °C and 42 °C.
3.3.2. Theoretical Assessments/Statements
- The r1234ze(E)/R744 indirect arrangement with MT and LT flooded evaporators and the r134a/R744 cascade solution present some modest energy savings;
- The other evaluated systems (i.e., R1234ze(E)/R744 indirect arrangement with MT flooded evaporators, R290/R744 indirect arrangement with and without LT flooded evaporators, R450A/R744 cascade solution and R513A/R744 cascade system) are not suitable candidates.
3.3.3. Laboratory and Field Experimental Assessments
Laboratory Experimental Assessments
Field Experimental Assessments
3.3.4. Economic Assessments
3.4. Multi-Ejector Based Solutions with Integration with Air Conditioning Unit
3.4.1. Technological Aspects
3.4.2. Theoretical Assessments/Statements
- The multi-ejector enhanced parallel compression unit with two multi-ejector blocks (one for MT load and one for AC demand) and AC evaporator located downstream of the liquid receiver is a suitable solution as high AC pressures are required;
- The multi-ejector enhanced parallel compression system with MT multi-ejector module and AC evaporator located upstream of the liquid receiver is an adequate solution as low AC pressures are necessary;
- The optimum discharge pressure is strongly related to the outdoor temperature, MT, AC evaporator position and AC evaporating pressure in transcritical operating conditions.
- A multi-ejector based solution integrated with the AC unit (solution similar to that in Figure 6) consumes from 19.3% to 26.9% less electricity;
- The investigated r1234ze(E)-based indirect arrangements (i.e., With and without integration with the AC equipment) offer energy savings between 4.7% and 6.4%;
- The r134a/R744 cascade system separately operating with a r1234ze(E) chiller can reduce the energy consumption from 1.9% to 4.7%;
- The other assessed solutions (i.e., R1234ze(E)-, R290-, R450A- and R513A-based systems) are not appropriate candidates.
3.4.3. Field Experimental Assessments
3.5. High Ambient Temperature Countries
4. Other Applications
4.1. Theoretical Assessemnts
4.2. Laboratory Experimental Assessments
5. Conclusions and Future Work
- (1)
- The persevering non-technological barriers, amongst which the lack of awareness of available technologies at decision making level and the lack of trained installers and service technicians [78];
- (2)
- The limited amount of available field measurements and economic evaluations, especially with respect to the latest proposed solutions (i.e., Units relying on two multi-ejector blocks and/or implementing direct heating and cooling fan coils and air curtains). The availability of such information would help to build confidence in these solutions and thus lead to finally open the doors to their market penetration in warm climates as well.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
Symbols, abbreviations and subscripts/superscripts | |
AC | Air conditioning |
COP | Coefficient of Performance (-) |
DHW | Domestic hot water |
GWP | Global Warming Potential () |
h | Enthalpy per unit of mass (kJ·kg−1) |
HCFC | Hydrochlorofluorocarbon |
HFC | Hydrofluorocarbon |
HP | High pressure (bar) |
HVP | High pressure electronic expansion valve |
HX | Heat exchanger |
IHX | Internal heat exchanger |
IP | Intermediate pressure (bar) |
LP | Low pressure (bar) |
LT | Low temperature (°C) |
Mass flow rate (kg·s−1) | |
MP | Medium pressure (bar) |
MT | Medium temperature (°C) |
ODP | Ozone Depletion Potential |
p | Pressure (bar) |
Heat transfer rate (kW) | |
RC&H | Refrigeration, cooling & heating |
s | Entropy per unit of mass (kJ·kg−1·K−1) |
t | Temperature (°C) |
TEWI | Total Equivalent Warming Impact () |
Power (kW) | |
Greek symbols | |
η | Efficiency [-] |
Suction pressure ratio [-] | |
Mass entrainment ratio [-] |
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Gullo, P.; Hafner, A.; Banasiak, K.; Minetto, S.; Kriezi, E.E. Multi-Ejector Concept: A Comprehensive Review on its Latest Technological Developments. Energies 2019, 12, 406. https://doi.org/10.3390/en12030406
Gullo P, Hafner A, Banasiak K, Minetto S, Kriezi EE. Multi-Ejector Concept: A Comprehensive Review on its Latest Technological Developments. Energies. 2019; 12(3):406. https://doi.org/10.3390/en12030406
Chicago/Turabian StyleGullo, Paride, Armin Hafner, Krzysztof Banasiak, Silvia Minetto, and Ekaterini E. Kriezi. 2019. "Multi-Ejector Concept: A Comprehensive Review on its Latest Technological Developments" Energies 12, no. 3: 406. https://doi.org/10.3390/en12030406
APA StyleGullo, P., Hafner, A., Banasiak, K., Minetto, S., & Kriezi, E. E. (2019). Multi-Ejector Concept: A Comprehensive Review on its Latest Technological Developments. Energies, 12(3), 406. https://doi.org/10.3390/en12030406