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Acadlore takes over the publication of IJEPM from 2025 Vol. 10, No. 3. The preceding volumes were published under a CC BY 4.0 license by the previous owner, and displayed here as agreed between Acadlore and the previous owner. ✯ : This issue/volume is not published by Acadlore.

Open Access
Research article

CFD Analysis of Solar Air Heater Using V-Shaped Artificial Roughness to Attain Heat Transfer Enhancement

Abhishek Agarwal1*,
Masengo Ilunga2,
Karma Tempa3,
Bharat Kumar Humagai4
1
Department of Mechanical Engineering, College of Science & Technology, Royal University of Bhutan, Phuentsholing 21101, Bhutan
2
Department of Civil Engineering, University of South Africa, Pretoria 1709, South Africa
3
Civil Engineering Department, College of Science and Technology, Royal University of Bhutan, Phuentsholing 21101, Bhutan
4
Department of Science and Humanities, College of Science and Technology, Royal University of Bhutan, Phuentsholing 21101, Bhutan
International Journal of Energy Production and Management
|
Volume 9, Issue 3, 2024
|
Pages 171-180
Received: 04-02-2024,
Revised: 06-17-2024,
Accepted: 07-22-2024,
Available online: 09-25-2024
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Abstract:

The solar air heaters are generally used in food drying applications or air heating applications. The solar air heater encompasses the collector body, duct, absorber glass surface, air inlet, and air outlet tube. In the present research, the solar collector model is designed in Creo parametric design software and imported into ANSYS design modeler. The thermal analysis of the solar air dryer is conducted in the ANSYS CFX simulation package at different Reynolds numbers. To attain heat transfer enhancement, V-shaped artificial roughness is incorporated on the upper absorber plate. The V-shaped artificial roughness considered for the analysis are 60°, 90°, and 120° angles. From the thermal analysis, heat transfer coefficient (HTC) value, pressure drop, and thermos hydraulic performance parameter are determined for different V-shaped artificial roughness profiles. The CFD simulation results have shown that including ribs in the design of the solar collector enhances its heat transfer rate and THPF (thermos-hydraulic performance factor). The V-shaped ribs with a rib angle of 60° have shown superior thermal-hydraulic performance in comparison to rib angles of 90° and 120°, across all Reynolds numbers.

Keywords: CFD, Simulation, Solar collector, Artificial roughness, ANSYS-CFX, Thermal analysis, Solar air heater design


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Agarwal, A., Ilunga, M., Tempa, K., & Humagai, B. K. (2024). CFD Analysis of Solar Air Heater Using V-Shaped Artificial Roughness to Attain Heat Transfer Enhancement. Int. J. Energy Prod. Manag., 9(3), 171-180. https://doi.org/10.18280/ijepm.090306
A. Agarwal, M. Ilunga, K. Tempa, and B. K. Humagai, "CFD Analysis of Solar Air Heater Using V-Shaped Artificial Roughness to Attain Heat Transfer Enhancement," Int. J. Energy Prod. Manag., vol. 9, no. 3, pp. 171-180, 2024. https://doi.org/10.18280/ijepm.090306
@research-article{Agarwal2024CFDAO,
title={CFD Analysis of Solar Air Heater Using V-Shaped Artificial Roughness to Attain Heat Transfer Enhancement},
author={Abhishek Agarwal and Masengo Ilunga and Karma Tempa and Bharat Kumar Humagai},
journal={International Journal of Energy Production and Management},
year={2024},
page={171-180},
doi={https://doi.org/10.18280/ijepm.090306}
}
Abhishek Agarwal, et al. "CFD Analysis of Solar Air Heater Using V-Shaped Artificial Roughness to Attain Heat Transfer Enhancement." International Journal of Energy Production and Management, v 9, pp 171-180. doi: https://doi.org/10.18280/ijepm.090306
Abhishek Agarwal, Masengo Ilunga, Karma Tempa and Bharat Kumar Humagai. "CFD Analysis of Solar Air Heater Using V-Shaped Artificial Roughness to Attain Heat Transfer Enhancement." International Journal of Energy Production and Management, 9, (2024): 171-180. doi: https://doi.org/10.18280/ijepm.090306
AGARWAL A, ILUNGA M, TEMPA K, et al. CFD Analysis of Solar Air Heater Using V-Shaped Artificial Roughness to Attain Heat Transfer Enhancement[J]. International Journal of Energy Production and Management, 2024, 9(3): 171-180. https://doi.org/10.18280/ijepm.090306