Simulation and Performance Evaluation of Trans-Critical CO2 Refrigeration System Integrated with Spray-Cooled Gas Coolers
Abstract
1. Introduction
2. Model Description
2.1. Trans-Critical CO2 Refrigeration System
2.2. Detailed Spray-Cooled Gas Cooler Model
2.3. CO2 Refrigeration System Model
2.4. Modeling Assumption and Conditions
3. Results and Discussion
3.1. Spray-Cooled Gas Cooler Model Validation
3.2. Pressure–Enthalpy and Temperature–Entropy Diagrams
3.3. Performance of Heat Rejection in Gas Cooler
3.4. Performance of Cooling Capacity in Evaporator
3.5. Performance of Compressor Power Consumption
3.6. Performance of System COP
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
| A | Heat transfer area, m2 |
| cp | Specific heat, J/(kg K) |
| C | Heat capacity rate, W/K |
| COP | Coefficient of performance |
| D | Hydraulic diameter, m; diameter, m |
| f | Friction factor |
| f1–f7 | Correlation parameters |
| Fs | Fin spacing, m |
| G | Mass flux, kg/(m2 s) |
| GBCV | Gas-bypass control valve |
| GWP | Global warming potential |
| h | Specific enthalpy, J/kg |
| hconv | Heat transfer coefficient, W/(m2 K); |
| i | Segment number |
| IPCV | Intermediate-pressure control valve |
| j | Colburn factor |
| j1–j7 | Correlation parameters |
| k | Thermal conductivity, W/(m K) |
| L | Length, m |
| LPCV | Low-pressure control valve |
| m | Mass flow rate, kg/s |
| N | Total segment number |
| NTU | Number of transfer units |
| Nu | Nusselt number |
| P | Pressure, Pa; tube pitch, m |
| Pr | Prandtl number |
| Q | Heat transfer rate, W |
| R | Ratio |
| Rt | Thermal resistance, K/W |
| Re | Reynolds number |
| ReDc | Reynolds number based on tube collar diameter |
| s | Specific entropy, J/(kg K) |
| Sh | Height of slit, m |
| Sn | Slit number in an enhanced zone |
| Ss | Breadth of a slit in airflow direction, m |
| T | Temperature, K |
| U | Overall heat transfer coefficient, W/(m2 K) |
| v | Velocity (m/s) |
| W | Work consumption (W) |
| x | Mass quality |
| ΔP | Pressure drop (Pa) |
| ΔT | Temperature difference, K |
| Greek letters | |
| ρ | Density, kg/m3 |
| μ | Dynamic viscosity, Pa·s |
| ɛ | Heat exchanger effectiveness |
| η | Efficiency |
| Subscripts | |
| comp | Compressor |
| evap | Evaporator |
| exp | Experiment |
| ext | External |
| fin | Fin |
| i | Inside |
| in | Inlet |
| is | Isentropic |
| l | Longitudinal |
| max | Maximum |
| min | Minimum |
| mix | Air/water mixture |
| o | Outside |
| out | Outlet |
| t | Transverse |
| total | Total |
| wat | Spray water |
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| No | Process |
|---|---|
| 10→1 | Non-isentropic compression in compressor |
| 1→2 | Heat rejection from CO2 to air/water mixture in gas cooler |
| 2→3 | Isenthalpic expansion in IPCV |
| 3→4, 7 | Isenthalpic separation to liquid and vapor in liquid receiver |
| 4→5 | Isenthalpic expansion in LPCV |
| 5→6 | Heat absorption from the cooling load in evaporator |
| 7→8 | Isenthalpic expansion in GBCV |
| 6, 8→9 | Isenthalpic mixing process |
| 9→10 | Isenthalpic mixed flow |
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Chai, L.; Tassou, S.A.; Tsamos, K.M. Simulation and Performance Evaluation of Trans-Critical CO2 Refrigeration System Integrated with Spray-Cooled Gas Coolers. Processes 2026, 14, 903. https://doi.org/10.3390/pr14060903
Chai L, Tassou SA, Tsamos KM. Simulation and Performance Evaluation of Trans-Critical CO2 Refrigeration System Integrated with Spray-Cooled Gas Coolers. Processes. 2026; 14(6):903. https://doi.org/10.3390/pr14060903
Chicago/Turabian StyleChai, Lei, Savvas A. Tassou, and Konstantinos M. Tsamos. 2026. "Simulation and Performance Evaluation of Trans-Critical CO2 Refrigeration System Integrated with Spray-Cooled Gas Coolers" Processes 14, no. 6: 903. https://doi.org/10.3390/pr14060903
APA StyleChai, L., Tassou, S. A., & Tsamos, K. M. (2026). Simulation and Performance Evaluation of Trans-Critical CO2 Refrigeration System Integrated with Spray-Cooled Gas Coolers. Processes, 14(6), 903. https://doi.org/10.3390/pr14060903

