Experimental Analysis of the R744/R404A Cascade Refrigeration System with Internal Heat Exchanger. Part 2: Exergy Characteristics
Abstract
:1. Introduction
2. Experimental Apparatus and Data Reduction
2.1. Experimental Apparatus
2.2. Data Reduction
2.3. Uncertainties
3. Results and Discussion
3.1. Effect of the Degree of Subcooling and Superheating
3.1.1. Effect of the Degree of Subcooling
3.1.2. Effect of Degree of Superheating
3.2. Effect of Condensation and Evaporation Temperature
3.2.1. Effect of Condensation Temperature
3.2.2. Effect of Evaporation Temperature
3.3. Effect of Evaporation Temperature of Cascade Heat Exchanger
3.4. Effect of Internal Heat Exchanger Efficiency
3.4.1. Effect of Internal Heat Exchanger Efficiency at R404A Cycle
3.4.2. Effect of Internal Heat Exchanger Efficiency at R744 Cycle
3.5. Comparison of Experimental and Pereformance Analysis Data
4. Conclusions
- The COP, exergy efficiency, and exergy destruction rate of a CRS have a close relationship. The lower the total exergy destruction rate of the system, the higher the exergy efficiency of the system and accordingly the COP of the system is also improved.
- In the CRS, since the optimum cascade evaporation temperature exists (about −16 °C), it can be said that the limit point, that is, the cascade evaporation temperature with the maximum COP of the system, is the optimum point at about −16 °C. Therefore, at this optimum point (i.e., optimum cascade evaporation temperature or evaporation pressure), the exergy destruction rate of the cascade heat exchanger is at its minimum value. In other words, it should be noted that when the cascade evaporation temperature is the optimum point, the exergy destruction rate of the R744 compressor and the cascade heat exchanger is minimal.
- In case R404A with high GWP cannot be applied, R448A and R449A, which can be replaced one-to-one with R404A, are recommended as alternative refrigerants for R404A.
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
Symbols | |
COP | Coefficients of performance |
Exergy rate (kW) | |
i | Specific enthalpy (kJ/kg) |
Mass flow rate (kg/s) | |
P | Pressure (kPa) |
Q | Heat capacity (kW) |
s | Specific entropy (kJ/(kg·K)) |
T | Temperature (°C) |
W | Power consumption (kW) |
Greek Symbols | |
Difference | |
η | Efficiency |
Superscripts | |
M | Mechanical |
T | Thermal |
Subscripts | |
C | Condensation, Condenser |
CAS | Cascade heat exchanger |
COM | Compressor |
D | Destruction |
E | Evaporation, Evaporator |
Exergy | |
F | Fuel |
IHX | Internal heat exchanger |
k | kth compenent |
P | Product |
Ratio | Ratio |
R404A | R404A refrigeration cycle |
R744 | R744 refrigeration cycle |
SUC | Subcooling |
SUH | Superheating |
SYS | Cascade refrigeration system |
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Advantages of R744 |
---|
|
Cycle | Component | Range | Unit |
---|---|---|---|
High-temperature cycle (R404A) | Condensation temperature | 20, 30, 40 *, 50 | °C |
Internal heat exchanger efficiency | 0 *, 1, 2, 3, 4 | stage | |
Subcooling degree | 0 *, 5, 10, 15, 20 | °C | |
Superheating degree | 10, 20 *, 30, 40 | °C | |
Evaporation temperature | −30, −25 *, −20, −15, −10 | °C | |
Temperature difference of cascade heat exchanger | 5 | °C | |
Low-temperature cycle (R744) | |||
Condensation temperature | −25, −20 *, −15, −10, −5 | °C | |
Internal heat exchanger efficiency | 0 *, 1, 2, 3, 4 | stage | |
Subcooling degree | 2 * | °C | |
Superheating degree | 10, 20, 30, 40 * | °C | |
Evaporation temperature | −50, −45, −40 *, −35, −30 | °C |
Component | Characteristics |
---|---|
Evaporator Condenser Cascade heat exchanger R404A compressor R744 compressor | Hand-made, type: horizontal double tube, material: copper tube, internal diameter of inner tube: 11.46mm, internal diameter of outer tube: 33.27 mm, length of the evaporator: 8000 mm Alfa Laval, model: ACH-70X-50H-F, heat exchanged: 38.44 kW, heat transfer area: 2.45 m2 Alfa Laval, model: ACH-70X-50H-F, heat exchanged: 10.86 kW, heat transfer area: 2.45 m2 Bock, model: HGX34P/380-4S. Displacement with 1450 min−1: 33.1 m3h−1, no. of cylinders: 4, weight: 96 kg, max. power consumption: 11.1 kW Bock, model: HGX12P/40-4. Displacement with 1450 min−1: 4.4 m3h−1, no. of cylinders: 2, weight: 53 kg, max. power consumption: 2.1 kW |
Cycle | Component | |||
---|---|---|---|---|
High Temperature Cycle (R404A) | Compressor (1→2) | |||
Condenser (2→4) | ||||
Internal heat exchanger (4→5, 8→1) | ) | |||
Expansion valve (5→6) | ) | |||
Cascade heat exchanger (6→8, 12→14) | ) | |||
Low Temperature Cycle (R744) | ||||
Compressor (11→12) | ||||
Internal heat exchanger (14→15, 18→11) | ) | |||
Expansion valve (15→16) | ) | |||
Evaporator (16→18) |
Parameters | Unit | Uncertainty |
---|---|---|
Mass flow rate | [kg/min] | ±0.01 |
COP of cascade refrigeration system | [/] | ±0.0135 |
Exergy destruction rate of system | [kW] | ±0.0175 |
Temperature | [oC] | ±0.20 |
[oC] | ±0.40 | |
Pressure | [kPa] | ±5.27 |
(Pressure drop) | [kPa] | ±0.01 |
Mass flow rate of coolant | [kg/h] | ±7.53 |
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Jeon, M.-J. Experimental Analysis of the R744/R404A Cascade Refrigeration System with Internal Heat Exchanger. Part 2: Exergy Characteristics. Energies 2022, 15, 1251. https://doi.org/10.3390/en15031251
Jeon M-J. Experimental Analysis of the R744/R404A Cascade Refrigeration System with Internal Heat Exchanger. Part 2: Exergy Characteristics. Energies. 2022; 15(3):1251. https://doi.org/10.3390/en15031251
Chicago/Turabian StyleJeon, Min-Ju. 2022. "Experimental Analysis of the R744/R404A Cascade Refrigeration System with Internal Heat Exchanger. Part 2: Exergy Characteristics" Energies 15, no. 3: 1251. https://doi.org/10.3390/en15031251
APA StyleJeon, M. -J. (2022). Experimental Analysis of the R744/R404A Cascade Refrigeration System with Internal Heat Exchanger. Part 2: Exergy Characteristics. Energies, 15(3), 1251. https://doi.org/10.3390/en15031251