Viability of an Open-Loop Heat Pump Drying System in South African Climatic Conditions †
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials and Equipment
2.1.1. Heat Pump
2.1.2. Air Duct and Drying Chamber
2.1.3. Measurement Equipment Specifications and Data Acquisition
2.2. Experimental Procedure
3. Experimentation and Uncertainty
3.1. Results and Data Analysis
3.2. Uncertainties
4. Results and Discussions
4.1. Variation in the Operating Conditions of the Open HPD System with Ambient Temperatures
4.2. Influence of Ambient Temperature on the Thermal Performance of the Heat Pump Drying System
5. Conclusions
- (i)
- Lower ambient temperatures result in diminished evaporator, suction, and discharge temperatures.
- (ii)
- These results have shown that, although the refrigerant density may generally decrease with temperature, the second property to determine the state of the refrigerant, such as the pressure, was also a significant property.
- (iii)
- The higher rate of increase in the discharge pressure with ambient temperatures compared to the suction pressure, which increased the compression ratio, negatively influenced the volumetric efficiency of the compressor.
- (iv)
- The power consumption by the compressor is highly dependent on the refrigerant mass flow rate, and the heating capacity greatly influences the COPHPD.
- (v)
- At ambient temperatures below 10 °C, the COP of the open HPD system decreased significantly, indicating the reduced energy efficiency of an open-loop air-source HPD system in such conditions.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
ASHRAE | American Society of Heating, Refrigerating, and Air-Conditioning Engineers |
COP | Coefficient of performance |
EES | Engineering Equation Solver |
HP | Heat pump |
HPD | Heat pump dryer |
TEV | Thermal expansion valve |
Refrigerant mass flow rate (kg/s) | |
h | Specific enthalpy (kJ/kg) |
P | Power ((kJ/s) or (kW)) |
p | Absolute pressure (bar, a) |
Heating capacity (kJ/s) | |
Q | Heating effect (kJ/kg) |
t | Temperature (°C) |
W | Work (kJ/kg) |
Subscripts | |
Comp | Compressor |
Cond | Condenser |
Evap | Evaporator |
ref | Refrigerant |
ρ | Density |
Ø | Diameter |
η | Efficiency |
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Ngalonkulu, S.M.; Huan, Z. Viability of an Open-Loop Heat Pump Drying System in South African Climatic Conditions. Energies 2024, 17, 2432. https://doi.org/10.3390/en17102432
Ngalonkulu SM, Huan Z. Viability of an Open-Loop Heat Pump Drying System in South African Climatic Conditions. Energies. 2024; 17(10):2432. https://doi.org/10.3390/en17102432
Chicago/Turabian StyleNgalonkulu, Solomzi Marco, and Zhongjie Huan. 2024. "Viability of an Open-Loop Heat Pump Drying System in South African Climatic Conditions" Energies 17, no. 10: 2432. https://doi.org/10.3390/en17102432
APA StyleNgalonkulu, S. M., & Huan, Z. (2024). Viability of an Open-Loop Heat Pump Drying System in South African Climatic Conditions. Energies, 17(10), 2432. https://doi.org/10.3390/en17102432