Experimental and numerical assessments of underlying natural air movement on PV modules temperature

PV panel installation on rooftops is increasing all around the world. The negative effect of the temperature increment on the performance of the PV panels is known. This study aims to evaluate the effect of the gap between the panels and rooftop on the effectiveness of free natural convection to pic...

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發表在:Solar Energy
主要作者: 2-s2.0-85100653685
格式: Article
語言:English
出版: Elsevier Ltd 2021
在線閱讀:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85100653685&doi=10.1016%2fj.solener.2021.01.007&partnerID=40&md5=77920039608993cd47132b854b755699
id Naghavi M.S.; Esmaeilzadeh A.; Singh B.; Ang B.C.; Yoon T.M.; Ong K.S.
spelling Naghavi M.S.; Esmaeilzadeh A.; Singh B.; Ang B.C.; Yoon T.M.; Ong K.S.
2-s2.0-85100653685
Experimental and numerical assessments of underlying natural air movement on PV modules temperature
2021
Solar Energy
216

10.1016/j.solener.2021.01.007
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85100653685&doi=10.1016%2fj.solener.2021.01.007&partnerID=40&md5=77920039608993cd47132b854b755699
PV panel installation on rooftops is increasing all around the world. The negative effect of the temperature increment on the performance of the PV panels is known. This study aims to evaluate the effect of the gap between the panels and rooftop on the effectiveness of free natural convection to pick up heat from the PV panel. The experimental and numerical investigation was carried out to study the effect of the natural air movement beneath the five PV panels merged vertically. The scope of the study was limited to the temperature measurement of air inlet/outlet and PV panels temperature. The effect of distance between the panels and rooftop and the solar radiation intensity are two main parameters that were studied. The experimental and numerical results showed that the mean temperature of the PV array with no air gap could be about 12 ± 5 °C higher than one provided with an air gap greater than 200 mm and is about 18 ± 5 °C when the gap increased to 250 mm when the radiation is about 1000 W/m2. While the efficiency of the PV panel in STC is 18.04%, it drops to 14.17% when the gap is 0 mm and increases to 15.01% and 15.44% for the gaps of 200 mm and 250 mm. CFD simulation shows that surface temperatures of panels are nearly uniform. The CFD simulation follows the experimental results quite closely. © 2021 International Solar Energy Society
Elsevier Ltd
0038092X
English
Article

author 2-s2.0-85100653685
spellingShingle 2-s2.0-85100653685
Experimental and numerical assessments of underlying natural air movement on PV modules temperature
author_facet 2-s2.0-85100653685
author_sort 2-s2.0-85100653685
title Experimental and numerical assessments of underlying natural air movement on PV modules temperature
title_short Experimental and numerical assessments of underlying natural air movement on PV modules temperature
title_full Experimental and numerical assessments of underlying natural air movement on PV modules temperature
title_fullStr Experimental and numerical assessments of underlying natural air movement on PV modules temperature
title_full_unstemmed Experimental and numerical assessments of underlying natural air movement on PV modules temperature
title_sort Experimental and numerical assessments of underlying natural air movement on PV modules temperature
publishDate 2021
container_title Solar Energy
container_volume 216
container_issue
doi_str_mv 10.1016/j.solener.2021.01.007
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85100653685&doi=10.1016%2fj.solener.2021.01.007&partnerID=40&md5=77920039608993cd47132b854b755699
description PV panel installation on rooftops is increasing all around the world. The negative effect of the temperature increment on the performance of the PV panels is known. This study aims to evaluate the effect of the gap between the panels and rooftop on the effectiveness of free natural convection to pick up heat from the PV panel. The experimental and numerical investigation was carried out to study the effect of the natural air movement beneath the five PV panels merged vertically. The scope of the study was limited to the temperature measurement of air inlet/outlet and PV panels temperature. The effect of distance between the panels and rooftop and the solar radiation intensity are two main parameters that were studied. The experimental and numerical results showed that the mean temperature of the PV array with no air gap could be about 12 ± 5 °C higher than one provided with an air gap greater than 200 mm and is about 18 ± 5 °C when the gap increased to 250 mm when the radiation is about 1000 W/m2. While the efficiency of the PV panel in STC is 18.04%, it drops to 14.17% when the gap is 0 mm and increases to 15.01% and 15.44% for the gaps of 200 mm and 250 mm. CFD simulation shows that surface temperatures of panels are nearly uniform. The CFD simulation follows the experimental results quite closely. © 2021 International Solar Energy Society
publisher Elsevier Ltd
issn 0038092X
language English
format Article
accesstype
record_format scopus
collection Scopus
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