Performance evaluation of interrupted and hybrid channel heat sinks for a triple junction high concentrator photovoltaic cell

High concentrator photovoltaic (HCPV) systems are designed to minimize the use of semiconductor materials by concentrating sunlight onto a smaller cell area. However, managing the excess heat generated during this concentration is a significant challenge, as it can affect the efficiency and lifespan...

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Main Authors: Muhammad Usman Sajid, Omer Abedrabboh, Yusuf Bicer
Format: Article
Language:English
Published: Elsevier 2025-03-01
Series:International Journal of Thermofluids
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Online Access:http://www.sciencedirect.com/science/article/pii/S2666202725000503
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author Muhammad Usman Sajid
Omer Abedrabboh
Yusuf Bicer
author_facet Muhammad Usman Sajid
Omer Abedrabboh
Yusuf Bicer
author_sort Muhammad Usman Sajid
collection DOAJ
description High concentrator photovoltaic (HCPV) systems are designed to minimize the use of semiconductor materials by concentrating sunlight onto a smaller cell area. However, managing the excess heat generated during this concentration is a significant challenge, as it can affect the efficiency and lifespan of the HCPV cells. Effective thermal management solutions are essential to ensure reliable and cost-effective operation. The objective of this study is to propose interrupted and hybrid channel heat sinks designed to effectively maintain the temperature of HCPV systems within safe operating limits. The present work explores the impact of heat sink channel configuration, concentration ratio, and Reynolds number on the performance of a high concentration triple-junction solar cell. A comprehensive thermal model was developed in COMSOL Multiphysics, and numerical results were validated against multiple sets of available experimental and computational data, ensuring both accuracy and reliability. The results reveal that the hybrid channel design (Geometry F) significantly reduces the maximum solar cell temperature from 82 °C to 78 °C at CR = 1500 and Re = 400, achieving up to a 39.5 % increase in the Nusselt number compared to the conventional straight channel design (Geometry A). Additionally, Geometry (F) maintains a high performance evaluation criterion (PEC) value of 1.22 at Re = 200, reflecting effective thermal-hydraulic performance. Furthermore, Geometry (F) reduces the heat sink weight by 3.7 %, which is particularly advantageous for sun-tracking applications, where minimizing weight is essential.
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spelling doaj-art-a5381e2f654144c193953b744c8ed5e62025-02-02T05:29:22ZengElsevierInternational Journal of Thermofluids2666-20272025-03-0126101102Performance evaluation of interrupted and hybrid channel heat sinks for a triple junction high concentrator photovoltaic cellMuhammad Usman Sajid0Omer Abedrabboh1Yusuf Bicer2Corresponding author.; Division of Sustainable Development, College of Science and Engineering, Hamad Bin Khalifa University, Qatar Foundation, Education City, Doha, QatarDivision of Sustainable Development, College of Science and Engineering, Hamad Bin Khalifa University, Qatar Foundation, Education City, Doha, QatarDivision of Sustainable Development, College of Science and Engineering, Hamad Bin Khalifa University, Qatar Foundation, Education City, Doha, QatarHigh concentrator photovoltaic (HCPV) systems are designed to minimize the use of semiconductor materials by concentrating sunlight onto a smaller cell area. However, managing the excess heat generated during this concentration is a significant challenge, as it can affect the efficiency and lifespan of the HCPV cells. Effective thermal management solutions are essential to ensure reliable and cost-effective operation. The objective of this study is to propose interrupted and hybrid channel heat sinks designed to effectively maintain the temperature of HCPV systems within safe operating limits. The present work explores the impact of heat sink channel configuration, concentration ratio, and Reynolds number on the performance of a high concentration triple-junction solar cell. A comprehensive thermal model was developed in COMSOL Multiphysics, and numerical results were validated against multiple sets of available experimental and computational data, ensuring both accuracy and reliability. The results reveal that the hybrid channel design (Geometry F) significantly reduces the maximum solar cell temperature from 82 °C to 78 °C at CR = 1500 and Re = 400, achieving up to a 39.5 % increase in the Nusselt number compared to the conventional straight channel design (Geometry A). Additionally, Geometry (F) maintains a high performance evaluation criterion (PEC) value of 1.22 at Re = 200, reflecting effective thermal-hydraulic performance. Furthermore, Geometry (F) reduces the heat sink weight by 3.7 %, which is particularly advantageous for sun-tracking applications, where minimizing weight is essential.http://www.sciencedirect.com/science/article/pii/S2666202725000503Computational fluid dynamicHigh concentrator photovoltaicsHeat sink configurationsThermal-hydraulic performanceReynolds number
spellingShingle Muhammad Usman Sajid
Omer Abedrabboh
Yusuf Bicer
Performance evaluation of interrupted and hybrid channel heat sinks for a triple junction high concentrator photovoltaic cell
International Journal of Thermofluids
Computational fluid dynamic
High concentrator photovoltaics
Heat sink configurations
Thermal-hydraulic performance
Reynolds number
title Performance evaluation of interrupted and hybrid channel heat sinks for a triple junction high concentrator photovoltaic cell
title_full Performance evaluation of interrupted and hybrid channel heat sinks for a triple junction high concentrator photovoltaic cell
title_fullStr Performance evaluation of interrupted and hybrid channel heat sinks for a triple junction high concentrator photovoltaic cell
title_full_unstemmed Performance evaluation of interrupted and hybrid channel heat sinks for a triple junction high concentrator photovoltaic cell
title_short Performance evaluation of interrupted and hybrid channel heat sinks for a triple junction high concentrator photovoltaic cell
title_sort performance evaluation of interrupted and hybrid channel heat sinks for a triple junction high concentrator photovoltaic cell
topic Computational fluid dynamic
High concentrator photovoltaics
Heat sink configurations
Thermal-hydraulic performance
Reynolds number
url http://www.sciencedirect.com/science/article/pii/S2666202725000503
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AT omerabedrabboh performanceevaluationofinterruptedandhybridchannelheatsinksforatriplejunctionhighconcentratorphotovoltaiccell
AT yusufbicer performanceevaluationofinterruptedandhybridchannelheatsinksforatriplejunctionhighconcentratorphotovoltaiccell