Simulation Research on the Optimization of Domestic Heat Pump Water Heater Condensers
Abstract
:1. Introduction
2. Method
2.1. Simulation Setup
- Liquid encapsulating heat exchangers were treated as continuous laminar flow.
- Fluid was incompressible.
- Solution domain mass was conserved.
- The inner wall temperature was a fixed value.
2.2. CFD Simulation
Heat Transfer between Solid and Fluid
2.3. Post-Process Data Analysis
2.4. Model Verification
3. Results and Discussion
3.1. Description of the Simulation Test
3.2. Grid-Independent Verification
3.3. Presentation of Results
3.3.1. Performance Differences among Fin-Tubes and Smooth-Tubes at Different Constant Internal Wall Temperatures
3.3.2. Changes of Fin-Tube Performance with Various Parameters
4. Conclusions
- (1)
- When the constant internal wall temperature were 75 °C, 85 °C, 95 °C and 105 °C, the prototype fin-tube had a heat transfer coefficient improvement of 7.03%, −6.45%, −17.57% and −24.37% over that of smooth-tube, respectively.
- (2)
- Heat transfer coefficient enhanced clearly, and the total thermal resistance of the fin-tube condenser decreased by 7% upon increasing the fin thickness.
- (3)
- The total thermal resistance of the fin-tube condenser increased by 1–1.3% when the fin spacing was increased.
- (4)
- When the temperature of the inner wall of the tube was 85 °C, the maximum temperature of the external waters could reach 56.46 °C. In 600 s, as fin spacing, fin height, fin thickness and inner diameter were 14 mm, 12.5 mm, 1.2 mm and 22.5 mm, respectively, compared to the smooth-tube condenser, the fin-tube condenser could increase the final water temperature by 18.37%, and the heat transfer efficiency would increase by about 95%.
- (5)
- It was found that as the inner diameter increased from 22.5 mm to 25.5 mm, the heat transfer coefficients of the fin-tube increased by 1.2%, 7.1% and 13.1%, respectively, and then showed a decreasing trend with a further increase in the inner diameter. Therefore, from a manufacturing point of view, it was easier to obtain a higher heat transfer efficiency by increasing the fin height.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
Density (kg/m3) | |
Constant pressure specific heat capacity (J/(kg·°C)) | |
f | Temperature field (°C) |
Temperature (°C) | |
Time (s) | |
Velocity field (m/s) | |
Heat flux (W/m2) | |
Heat (W) | |
Thermal conductivity (W/(m·°C)) | |
Shear force (N) | |
Unit tensor (N) | |
Viscous term (Pa·s) | |
Body force (N) | |
Gravity term (m/s2) | |
m | Mass (kg) |
Convective heat transfer coefficient (W/(m2·°C)) | |
Specific heat capacity (J /(kg·°C)) | |
Tube length (mm) | |
Subscript | |
m | Mean temperature |
d | Inner diameter |
D | Outer diameter |
fh | Fin height |
fs | Fin spacing |
ft | Fin thickness |
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Components | Model |
---|---|
CPU | 12th Gen Intel(R) Core(TM) i7-12700KF 3.60 GHz, Intel, Shanghai, China |
RAM | 16.0 GB, Kingston, Shanghai, China |
Operating System | 64-bit |
GPU | NVIDIA GeForce GTX 1650, GALAX, Qinghai, China |
Tube Type/Structure (mm) | Inner Diameter | Outer Diameter | Tube Length | Fin Thickness | Fin Height | Fin Spacing |
---|---|---|---|---|---|---|
Fin-tube | 22.5 | 25 | 550 | 1.2 | 12.5 | 5 |
Smooth-tube | 22.5 | 25 | 550 | -- | -- | -- |
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Han, Y.; Feng, R.; Xiao, T.; Guo, M.; Wu, J.; Cui, H. Simulation Research on the Optimization of Domestic Heat Pump Water Heater Condensers. Energies 2023, 16, 7441. https://doi.org/10.3390/en16217441
Han Y, Feng R, Xiao T, Guo M, Wu J, Cui H. Simulation Research on the Optimization of Domestic Heat Pump Water Heater Condensers. Energies. 2023; 16(21):7441. https://doi.org/10.3390/en16217441
Chicago/Turabian StyleHan, Yang, Rong Feng, Taiyang Xiao, Machao Guo, Jiahui Wu, and Hong Cui. 2023. "Simulation Research on the Optimization of Domestic Heat Pump Water Heater Condensers" Energies 16, no. 21: 7441. https://doi.org/10.3390/en16217441
APA StyleHan, Y., Feng, R., Xiao, T., Guo, M., Wu, J., & Cui, H. (2023). Simulation Research on the Optimization of Domestic Heat Pump Water Heater Condensers. Energies, 16(21), 7441. https://doi.org/10.3390/en16217441