Investigating the performance of the Tesla valve channel in a photovoltaic thermal system through numerical simulation: Evaluation from the standpoint of thermodynamic laws

This study examines the impact of integrating a Tesla valve on the functionality of a photovoltaic/thermal (PVT) unit under laminar and turbulent flow conditions. Improving the geometry of PVT enhances its thermal and electrical efficiency while reducing its size. Here, a three-dimensional numerical...

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Published in:INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER
Main Authors: Hai, Tao; Rahman, Md Arafatur; Aksoy, Muammer; Zhou, Jincheng; Alenazi, Mohammed J. F.; Singh, Narinderjit Singh Sawaran; Zain, Jasni Mohamad; Jawawi, Dayang N. A.
Format: Article
Language:English
Published: PERGAMON-ELSEVIER SCIENCE LTD 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001350488300001
author Hai
Tao; Rahman
Md Arafatur; Aksoy
Muammer; Zhou
Jincheng; Alenazi
Mohammed J. F.; Singh
Narinderjit Singh Sawaran; Zain
Jasni Mohamad; Jawawi
Dayang N. A.
spellingShingle Hai
Tao; Rahman
Md Arafatur; Aksoy
Muammer; Zhou
Jincheng; Alenazi
Mohammed J. F.; Singh
Narinderjit Singh Sawaran; Zain
Jasni Mohamad; Jawawi
Dayang N. A.
Investigating the performance of the Tesla valve channel in a photovoltaic thermal system through numerical simulation: Evaluation from the standpoint of thermodynamic laws
Thermodynamics; Mechanics
author_facet Hai
Tao; Rahman
Md Arafatur; Aksoy
Muammer; Zhou
Jincheng; Alenazi
Mohammed J. F.; Singh
Narinderjit Singh Sawaran; Zain
Jasni Mohamad; Jawawi
Dayang N. A.
author_sort Hai
spelling Hai, Tao; Rahman, Md Arafatur; Aksoy, Muammer; Zhou, Jincheng; Alenazi, Mohammed J. F.; Singh, Narinderjit Singh Sawaran; Zain, Jasni Mohamad; Jawawi, Dayang N. A.
Investigating the performance of the Tesla valve channel in a photovoltaic thermal system through numerical simulation: Evaluation from the standpoint of thermodynamic laws
INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER
English
Article
This study examines the impact of integrating a Tesla valve on the functionality of a photovoltaic/thermal (PVT) unit under laminar and turbulent flow conditions. Improving the geometry of PVT enhances its thermal and electrical efficiency while reducing its size. Here, a three-dimensional numerical analysis was performed for eight Reynolds numbers (Re) ranging from 500 to 20,000. The objective was to investigate the effects of reverse and forward flow patterns (RFP and FFP) on key hydrothermal and entropy generation characteristics and to determine the best geometry and flow pattern of the studied PVT. The results indicated that in the laminar and turbulent regimes, the PV panel temperature in the RFP was 0.045-0.017 % and 0.126 %-0.074 % lower than that in the FFP, respectively. Additionally, transitioning from Re of 500 to 20,000 led to a 5.09 % decrease in the PV panel temperature. Moreover, the overall efficiency in the RFP was 1.62 %-4.21 % greater than that in the FFP, and the Re rise decreased the difference between the overall efficiency in the two flow patterns. Furthermore, the frictional entropy generation rate significantly exceeded the thermal term, increasing by 514 folds and 407 folds at Re = 10,000 and 20,000 compared to the values at Re = 500 in the RFP and FFP, respectively.
PERGAMON-ELSEVIER SCIENCE LTD
0735-1933
1879-0178
2024
159

10.1016/j.icheatmasstransfer.2024.108197
Thermodynamics; Mechanics

WOS:001350488300001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001350488300001
title Investigating the performance of the Tesla valve channel in a photovoltaic thermal system through numerical simulation: Evaluation from the standpoint of thermodynamic laws
title_short Investigating the performance of the Tesla valve channel in a photovoltaic thermal system through numerical simulation: Evaluation from the standpoint of thermodynamic laws
title_full Investigating the performance of the Tesla valve channel in a photovoltaic thermal system through numerical simulation: Evaluation from the standpoint of thermodynamic laws
title_fullStr Investigating the performance of the Tesla valve channel in a photovoltaic thermal system through numerical simulation: Evaluation from the standpoint of thermodynamic laws
title_full_unstemmed Investigating the performance of the Tesla valve channel in a photovoltaic thermal system through numerical simulation: Evaluation from the standpoint of thermodynamic laws
title_sort Investigating the performance of the Tesla valve channel in a photovoltaic thermal system through numerical simulation: Evaluation from the standpoint of thermodynamic laws
container_title INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER
language English
format Article
description This study examines the impact of integrating a Tesla valve on the functionality of a photovoltaic/thermal (PVT) unit under laminar and turbulent flow conditions. Improving the geometry of PVT enhances its thermal and electrical efficiency while reducing its size. Here, a three-dimensional numerical analysis was performed for eight Reynolds numbers (Re) ranging from 500 to 20,000. The objective was to investigate the effects of reverse and forward flow patterns (RFP and FFP) on key hydrothermal and entropy generation characteristics and to determine the best geometry and flow pattern of the studied PVT. The results indicated that in the laminar and turbulent regimes, the PV panel temperature in the RFP was 0.045-0.017 % and 0.126 %-0.074 % lower than that in the FFP, respectively. Additionally, transitioning from Re of 500 to 20,000 led to a 5.09 % decrease in the PV panel temperature. Moreover, the overall efficiency in the RFP was 1.62 %-4.21 % greater than that in the FFP, and the Re rise decreased the difference between the overall efficiency in the two flow patterns. Furthermore, the frictional entropy generation rate significantly exceeded the thermal term, increasing by 514 folds and 407 folds at Re = 10,000 and 20,000 compared to the values at Re = 500 in the RFP and FFP, respectively.
publisher PERGAMON-ELSEVIER SCIENCE LTD
issn 0735-1933
1879-0178
publishDate 2024
container_volume 159
container_issue
doi_str_mv 10.1016/j.icheatmasstransfer.2024.108197
topic Thermodynamics; Mechanics
topic_facet Thermodynamics; Mechanics
accesstype
id WOS:001350488300001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001350488300001
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