Experimental Investigation of R404A Indirect Refrigeration System Applied Internal Heat Exchanger: Part 1—Coefficient of Performance Characteristics
Abstract
:1. Introduction
2. Test Device and Data Analysis
2.1. Test Device
2.2. Test Methodoloy
- The cooling-water and heat-source water temperatures of the constant-temperature baths were adjusted to the required temperature.
- The compressor was turned on, and the compressor–inverter frequency and EV were adjusted to establish the MFR and evaporation temperature at the R404A RC.
- After running the R404A RC, the condition of the liquid refrigerant obtained from the R744 receiver was examined, and then the pump was operated.
- The subcooling and superheating degrees of the system were set by adjusting the R744 and cooling-water flow rates.
2.3. Data Analysis and Uncertainties
3. Results
3.1. Influence on DSH
3.1.1. Influence on DSH at the R404A RC
3.1.2. Influence on DSH at the R744 SFC
3.2. Influence on DSC
Influence on DSC at the R404A RC
3.3. Influence on Condensation Temperature
3.4. Influence on Cascade Evaporation Temperature
3.5. Influence on IHX Efficiency
3.6. Comparing Results from Experimental Data and Performance Analysis Data
4. Conclusions
- (1)
- By maximizing the DSH, DSC, CET, and IHX efficiency of R404A RC and reducing the DSH and condensation temperature of R744 SFC to the minimum, the COP of R404A RC and IRS can be improved and the refrigerant charge of R404A can be reduced.
- (2)
- Among the six variables, the change in DSH of R744 SFC has a very minimal effect of less than 1% on the COP and R404A refrigerant charge rate of R404A RC and IRS. Therefore, there is no need to consider R744 SFC when designing R404A IRS using R744 as a secondary fluid.
- (3)
- In terms of COP, CT has the greatest impact, followed by CET, DSH R404A RC, IHX efficiency, DSC of R404A RC, and DSH of R744 SFC.
- (4)
- In terms of refrigerant charge rate reduction, DSH of R404A RC has the greatest impact, followed by DSC of R404A RC, CT, CET, IHX efficiency, and DSH of R744 SFC.
- (5)
- In particular, looking at the trend of the increase in IHX efficiency, the change is very minimal when the efficiency is above 50%, so it is ideal to apply an IHX efficiency of about 50% considering economics, COP, etc.
- (6)
- In the future, the R404A refrigerant must be replaced with other eco-friendly refrigerants. In cases where R404A is to be replaced with other refrigerants, R448A (GWP 1273) and R449A (GWP 1282) are recommended for GWP < 1500, whereas R454C (GWP 148) and R455A (GWP 146) are recommended for GWP < 150 (low-GWP refrigerant).
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
ABBREVIATIONS | |
CC | Cascade condenser |
CE | Cascade evaporator |
CET | Cascade evaporation temperature |
CHX | Cascade heat exchanger |
DSC | Degree of subcooling |
DSH | Degree of superheating |
DXS | Direct expansion system |
EHC | Evaporation heat capacity |
EV | Expansion valve |
GWP | Global warming potential |
IE | Inlet enthalpy |
IHX | Internal heat exchanger |
IRS | Indirect refrigeration system |
LT | Low-temperature level |
MDXS | Multiplexed direct expansion system |
MFR | Mass flow rate |
ODP | Ozone depletion potential |
OE | Outlet enthalpy |
PCC | Power consumption of compressor |
RC | Refrigeration cycle |
SFC | Secondary fluid cycle |
SYMBOLS | |
COP | Coefficient of performance (-) |
h | Enthalpy (kJ/kg) |
Mass flow rate (kg/s) | |
Pressure (kPa) | |
Q | Heat capacity (kW) |
T | Temperature (°C) |
W | Power consumption (kW) |
GREEK SYMBOLS | |
Difference | |
Efficiency | |
SUBSCRIPTS | |
C | Condensation, Condenser |
CAS | Cascade heat exchanger |
COM | Compression |
E | Evaporation, Evaporator |
IHX | Internal heat exchanger |
PUM | Pump |
Ratio | Ratio |
R404 | AR404A cycle |
R744 | R744 cycle |
SUB | Degree of subcooling |
SUP | Degree of superheating |
SYS | Total system |
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Country | Number of Supermarkets | Number of Hypermarkets |
---|---|---|
China | 101,200 | 100 |
Japan | 14,663 | 1603 |
Other Asia | 18,826 | 620 |
USA | 40,203 | 2470 |
Other America | 75,441 | 7287 |
EU | 58,134 | 5410 |
Other Europe | 8954 | 492 |
Africa, Oceania | 4,538 | 39 |
Total | 321,959 | 18,021 |
Component | Specs |
---|---|
R744 liquid pump | Micropump (model: Series 5000); flow range: 0–13.5 L/min; temperature range: −46 to 121 °C; maximum system pressure: 103 bar (1500 psi) |
R404A compressor | Bock (model HGX34P/380-4S); number of cylinders: 4; displacement at 1450 min−1: 33.1 m3 h−1; maximum power consumption: 11.1 kW; weight: 96 kg |
Condenser | Alfa Laval (model ACH-70X-50H-F); heat transfer area: 2.45 m2; heat capacity: 38.44 kW |
CHX | Alfa Laval (model ACH-70X-50H-F); heat transfer area: 2.45 m2; heat capacity: 10.86 kW |
Evaporator | Custom-developed. Type: Horizontal double tube; internal diameter of outer tube: 33.27 mm; internal diameter of inner tube: 11.46 mm; evaporator length: 8000 mm; material: copper tube |
Measured Parameter | Details of Equipment |
---|---|
MFR of the R404A RC | OVAL ULTRAmass MKII flowmeter (model CT9401-CN10); range: 0–24 kg∙min−1 |
MFR of the R744 SFC | OVAL ULTRAmass MKII flowmeter (model CT9401-CN06); range: 0–12 kg∙min−1 |
Water flowrate | Corea Flow (model TBN-II-AD; turbine flowmeter); range: 0.6–6 m3 h |
Power | Yokogawa digital power meter (model WT230); range: 0.5–100 kHz, 15–600 V, 0.5–20 A |
Pressure | WIKA (model S-10); range: 0–5 V, 0–160 bar abs |
Temperature | ONDI (model TT-TE; T-type); range: −270–400 °C |
Cycle | Component | Range | Units |
---|---|---|---|
Refrigeration cycle (R404A) | Condensation temperature | 20, 30, 40 *, 50 | °C |
IHX efficiency | 0 *, 1, 2, 3, 4 | stage | |
Subcooling degree | 0 *, 5, 10, 15, 20 | °C | |
Superheating degree | 10, 20 *, 30, 40 | °C | |
Cascade evaporation temperature | −40, −30, −25 *, −20, −10, 0 | °C | |
Secondary fluid cycle (R744) | Temperature difference of CHX | 5 * | °C |
Cascade condensation temperature | −35, −25, −20 *, −15, −5, 5 | °C | |
Evaporation temperature | −35, −25, −20 *, −15, −5, 5 | °C | |
Subcooling degree | 1 * | °C | |
Superheating degree | 10 *, 20, 30, 40 | °C |
Cycle | Component | Energy | Mass |
---|---|---|---|
Refrigeration cycle (R404A) | Compressor (1→2) | ||
Condenser (2→4) | |||
Subcooling degree (3→4) | |||
Internal heat exchanger (4→5 and 8→1) | |||
Expansion valve (5→6) | |||
Cascade evaporator (6→8) | |||
Superheating degree (7→8) | |||
Secondary fluid cycle (R744) | Cascade condenser (12→14) | ||
Subcooling degree (13→14) | |||
Pump (14→15) | |||
Evaporator (15→12) | |||
Superheating degree (11→12) |
Parameters | Units | Uncertainty |
---|---|---|
MFR | [kg/min] | 0.0100 |
Power consumption of compressor | [kW] | 0.0350 |
Power consumption of pump | [W] | 0.2350 |
COP of the R404A RC | [/] | 0.0128 |
COP of the total IRS | [/] | 0.0129 |
Temperature | [°C] | 0.2000 |
[°C] | 0.4000 | |
Pressure | [kPa] | 5.2700 |
(pressure drop) | [kPa] | 0.0100 |
MFR of coolant | [kg/h] | 7.5300 |
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Jeon, M.-J.; Lee, J.-H. Experimental Investigation of R404A Indirect Refrigeration System Applied Internal Heat Exchanger: Part 1—Coefficient of Performance Characteristics. Energies 2024, 17, 4127. https://doi.org/10.3390/en17164127
Jeon M-J, Lee J-H. Experimental Investigation of R404A Indirect Refrigeration System Applied Internal Heat Exchanger: Part 1—Coefficient of Performance Characteristics. Energies. 2024; 17(16):4127. https://doi.org/10.3390/en17164127
Chicago/Turabian StyleJeon, Min-Ju, and Joon-Hyuk Lee. 2024. "Experimental Investigation of R404A Indirect Refrigeration System Applied Internal Heat Exchanger: Part 1—Coefficient of Performance Characteristics" Energies 17, no. 16: 4127. https://doi.org/10.3390/en17164127
APA StyleJeon, M. -J., & Lee, J. -H. (2024). Experimental Investigation of R404A Indirect Refrigeration System Applied Internal Heat Exchanger: Part 1—Coefficient of Performance Characteristics. Energies, 17(16), 4127. https://doi.org/10.3390/en17164127