A Streamlined Polynomial Regression-Based Modeling of Speed-Driven Hermetic-Reciprocating Compressors
Abstract
1. Introduction
2. Methodology
2.1. Analytical Procedures
2.2. Mathematical Model
3. Results
3.1. Operating Range
3.2. One-Dimensional Polynomial Regression
3.3. Two-Dimensional Polynomial Regression
4. Validation and Comparison
5. Conclusions
- (1)
- A systematic and detailed methodology for determining and of the reciprocating compressor has been thoroughly elaborated and implemented.
- (2)
- Both and exhibit significant dependency on variations in motor speed frequency; however, the disparity in observed between 30 Hz and 40 Hz is markedly more pronounced when compared to the differentials identified across other adjacent frequency intervals.
- (3)
- Although 1-D polynomial regression approaches are capable of representing compressor performance under constant-speed or fixed-frequency conditions, they demonstrate considerable limitations and fail to deliver reliable predictions when applied to variable-speed operational scenarios.
- (4)
- The introduction of 2-D regression models, which simultaneously incorporate compression ratio and motor frequency as independent variables, facilitates highly accurate predictions of compressor performance under speed-varying conditions and significantly improves model accuracy at low-frequency operation, where traditional models tend to underperform.
- (5)
- The newly developed CO2 compressor model proposed in this study has been rigorously validated against publicly available experimental datasets, demonstrating satisfactory agreement between simulated and empirical results, with particular emphasis on its enhanced predictive accuracy under low-speed operating regimes.
- (6)
- The proposed framework represents a novel and transparent numerical approach that accounts for frequency-dependent behavior without relying on complex CFD models. This methodological advancement provides a practical foundation for future numerical studies, system-level simulations, and optimization of variable-speed compressor applications.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| f | motor speed frequency, Hz |
| , , , , | functions of refrigerant property |
| h | enthalpy, kJ/kg |
| mass flow rate, kg/s | |
| P | pressure, bar |
| r | compression ratio |
| T | temperature, °C or K |
| ΔT | temperature difference, °C or K |
| displacement rate of the compressor, m3/h | |
| compression work, kW | |
| efficiency | |
| volum | volumetric efficiency |
| isentr | Isentropic efficiency |
| density, kg/m3 | |
| MAPE | mean absolute percentage error |
| RMSE | root mean square error |
| RPM | Revolution per minute |
| 1-D | One-dimensional |
| 2-D | Two-dimensional |
| comp | compressor |
| dis | discharge |
| evaporation | |
| ref | reference |
| suc | suction |
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| Parameter | Value | Parameter | Value |
|---|---|---|---|
| f (Hz) | 25 | (kg/h) | 490 |
| fref (Hz) | 50 | suc (kg/m3) | 102.39 |
| Pdis (bar) | 80 | (m3/h) | 12 |
| Psuc (bar) | 40 | 0.7975 | |
| r | 2 |
| Parameter | Value | Parameter | Value |
|---|---|---|---|
| Pdis (bar) | 80 | Δ | 35.22 |
| Psuc (bar) | 40 | (kW) | 7.8 |
| r | 2 | 0.6146 | |
| (kg/s) | 0.136 |
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Wang, J.; Lu, W. A Streamlined Polynomial Regression-Based Modeling of Speed-Driven Hermetic-Reciprocating Compressors. Appl. Sci. 2025, 15, 12016. https://doi.org/10.3390/app152212016
Wang J, Lu W. A Streamlined Polynomial Regression-Based Modeling of Speed-Driven Hermetic-Reciprocating Compressors. Applied Sciences. 2025; 15(22):12016. https://doi.org/10.3390/app152212016
Chicago/Turabian StyleWang, Jay, and Wei Lu. 2025. "A Streamlined Polynomial Regression-Based Modeling of Speed-Driven Hermetic-Reciprocating Compressors" Applied Sciences 15, no. 22: 12016. https://doi.org/10.3390/app152212016
APA StyleWang, J., & Lu, W. (2025). A Streamlined Polynomial Regression-Based Modeling of Speed-Driven Hermetic-Reciprocating Compressors. Applied Sciences, 15(22), 12016. https://doi.org/10.3390/app152212016

