Study on Heating and Cooling Performance of Air-to-Water Heat Pump System for Protected Horticulture
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Greenhouse
2.2. AWHP
3. Results and Discussion
4. Conclusions
- The maximum cool energy supply to the greenhouse was 230 kcal∙h−1∙m−2 on 6 August 2021 when the ambient solar radiation was the highest at 850 kcal∙h−1∙m−2. Moreover, the maximum cooling energy supply to greenhouse section 1 (GH 1) and section 2 (GH 2) was 30 and 25 Mcal∙h−1, and the total cool energy supply during the summer period to greenhouse section 1 (GH 1) and section 2 (GH 2) was 29,916 and 20,239 Mcal∙h−1.
- The maximum heat energy supply to the greenhouse was 210 kcal∙h−1∙m−2 on 26 December 2021 when the ambient temperature was the lowest (−10 °C). In addition, the maximum heat energy supplied to greenhouse sections 1 (GH 1) and 2 (GH 2) was 33 and 24 Mcal∙h−1 and the total heat energy supplied during the winter season to the greenhouse section 1 (GH 1) and section 2 (GH 2) was 46,225 and 17,438 Mcal∙h−1.
- The desired air temperature of 20 °C was achieved during the winter season, while during the summer season, a setpoint temperature of 22 °C was achieved during the night. However, during the daytime, the air temperature was 30 °C, which was higher than the desired air temperature.
- The linear regression R2 analysis of the heating load with ambient temperature and solar radiation was 0.70 and 0.35, respectively, showing that the heating load is more dependent on the outside air temperature. Moreover, the R2 values for cooling load compared with outside air temperature and ambient solar radiation were found to be 0.35 and 0.79, respectively, indicating the fact that the cooling load is more dependent on the outside solar radiation.
- The average COP of the AWHP in heating mode was 2.2 when operating at full capacity. The average amount of heating energy produced by the heat pump was 84,088 kcal∙h−1, and the consumed electric power was 38,718 kcal∙h−1. The average COP of the AWHP in cooling mode was 3.1 when operating at full capacity; the average amount of cooling energy produced by the heat pump was 29,030 kcal∙h−1, and the consumed electric power was 9286 kcal∙h−1.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
Symbols | |
Q | Cooling capacity of the AWHP (kcal·h−1) |
Mass flow rate of air (kg·h−1) | |
cp | Specific heat capacity of water (kcal·kg−1·°C−1), |
Convective heat transfer (kcal·h−1·m−2·k−1) | |
PHP | Power usage of AWHP (kcal) |
Abbreviations | |
HP | Heat pump |
GH | Greenhouse |
AWHP | Air-to-water heat pump |
GSHP | Ground source heat pump |
AAHP | Air-to-air heat pump |
CEA | Controlled environment agriculture |
FCU | Fan coil unit |
COP | Coefficient of performance |
ST | Water storage tank |
PI | Proportional–integral |
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Component | Properties | Specification |
---|---|---|
Heat pump | Model | PSET-C60W (MIDEA) |
Heating capacity | 60,200 kcal·h−1 | |
Cooling Capacity | 55,900 kcal·h−1 | |
Power consumption heating/cooling | 18,843/18,326 kcal·h−1 | |
Voltage | 380–415 V, 3-phase, 60 Hz | |
Refrigerant | R-410a | |
Fan coil unit | Model | IN-FCG0016-L |
Heating capacity | 23,231 kcal·h−1 | |
Cooling Capacity | 15,488 kcal·h−1 | |
Power consumption | 383 kcal·h−1 | |
Airflow rate | 83 m3·m−1 | |
Water circulation pump | Model | Wilo TOP-S 40/7 |
Max. fluid temperature | 130 °C | |
Min. fluid temperature | −20 °C | |
Power consumption | 335 kcal·h−1 | |
Water storage tank | Storage capacity | 50 m3 |
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Rasheed, A.; Lee, J.W.; Kim, H.T.; Lee, H.W. Study on Heating and Cooling Performance of Air-to-Water Heat Pump System for Protected Horticulture. Energies 2022, 15, 5467. https://doi.org/10.3390/en15155467
Rasheed A, Lee JW, Kim HT, Lee HW. Study on Heating and Cooling Performance of Air-to-Water Heat Pump System for Protected Horticulture. Energies. 2022; 15(15):5467. https://doi.org/10.3390/en15155467
Chicago/Turabian StyleRasheed, Adnan, Jong Won Lee, Hyeon Tae Kim, and Hyun Woo Lee. 2022. "Study on Heating and Cooling Performance of Air-to-Water Heat Pump System for Protected Horticulture" Energies 15, no. 15: 5467. https://doi.org/10.3390/en15155467
APA StyleRasheed, A., Lee, J. W., Kim, H. T., & Lee, H. W. (2022). Study on Heating and Cooling Performance of Air-to-Water Heat Pump System for Protected Horticulture. Energies, 15(15), 5467. https://doi.org/10.3390/en15155467