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Temperature regulation of concentrating photovoltaic window using argon gas and polymer dispersed liquid crystal films.

Authors :
Khalid, Maria
Shanks, Katie
Ghosh, Aritra
Tahir, Asif
Sundaram, Senthilarasu
Mallick, Tapas Kumar
Source :
Renewable Energy: An International Journal. Feb2021, Vol. 164, p96-108. 13p.
Publication Year :
2021

Abstract

Low concentrating photovoltaic (LCPV) system has been studied extensively, which showed excellent potential for the building integration application. However, such a system suffers from higher operating temperatures due to the concentrated light exposed into the solar cell. In this work, two different methods have been used to regulate the operating temperature of the solar cell without the interference of any other external mechanism. Two concepts were used to study the operating temperature of the solar cells are: i) use of Argon gas within the concentrator element, ii) incorporation of polymer-dispersed liquid crystal films (PDLC) on top of the module. In both cases, the power was improved by 37 mW–47 mW when temperature was reduced by 10 °C and 4 °C for the Argon gas-filled module and PDLC integrated module, respectively. In addition, the temperature effect of the PDLC integrated module showed a unique nature of reduction of the short circuit current due to the orientation of the liquid crystal particle, which increased at a higher temperature. The current study, therefore, shows the greater potential of improving the operating efficiency and reduction of solar cell temperature, without the need for additional pumping power such as needed for photovoltaic thermal application. • Optical and thermal performance were analysed at laboratory environment for LCPV SEH system. • Output of the system is demonstrated using different strategies, Argon filled and PDLC on the top of the module. • Operating temperature was reduced by 10 °C and 4 °C for both states respectively. • Increment in power was 37 mW and 47 mW respectively. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09601481
Volume :
164
Database :
Academic Search Index
Journal :
Renewable Energy: An International Journal
Publication Type :
Academic Journal
Accession number :
147154100
Full Text :
https://doi.org/10.1016/j.renene.2020.09.069