DocumentCode
1951646
Title
Experimental assessment of flat-type photovoltaic module thermal behavior
Author
Bojanampati, Shrinivas ; Rodgers, Peter ; Eveloy, Valerie
Author_Institution
Dept. of Mech. Eng., Pet. Inst., Abu Dhabi, United Arab Emirates
fYear
2012
fDate
16-18 April 2012
Firstpage
42373
Lastpage
42464
Abstract
The electrical performance and reliability of flat-type photovoltaic (PV) modules can be severely affected by elevated cell operating temperature in regions benefiting from high yearly solar irradiation levels, due to elevated ambient temperatures. In this work the potential of active cooling solutions to enhance flat-type PV module electrical performance, consisting of forced air- and water-cooling, is experimentally explored on laboratory-scale prototypes operated indoors under different light source illuminance levels. Forced-air and water-cooling are implemented using a duct-axial fan configuration and chilled water channel, respectively, both attached to the module non-active surface. In both cooling configurations, the cooling fluid directly wets the module non-active surface, thereby eliminating thermal contact resistance. Forced air-cooling is found to improve module peak output power by approximately 10% relative to passive cooling, in an ambient temperature of 21°C. The output power of water-cooled modules increases by 48% using unchilled water at a temperature 21°C, and by 66% and 69% using chilled water at 14°C and 5°C, respectively, relative to passive cooling. The experiments conducted therefore provide an order-of-magnitude assessment of the technical feasibility of different active cooling strategies before characterizing commercial modules under solar irradiation conditions.
Keywords
contact resistance; cooling; solar cells; active cooling solutions; chilled water channel; cooling configurations; cooling fluid; duct-axial fan configuration; electrical performance; elevated ambient temperatures; flat-type photovoltaic module thermal behavior; flat-type photovoltaic modules; forced air-cooling; laboratory-scale prototypes; light source illuminance levels; module nonactive surface; passive cooling; solar irradiation conditions; solar irradiation levels; temperature 14 C; temperature 21 C; temperature 5 C; thermal contact resistance; water-cooled modules; water-cooling; Current measurement; Resistance; Semiconductor device measurement;
fLanguage
English
Publisher
ieee
Conference_Titel
Thermal, Mechanical and Multi-Physics Simulation and Experiments in Microelectronics and Microsystems (EuroSimE), 2012 13th International Conference on
Conference_Location
Cascais
Print_ISBN
978-1-4673-1512-8
Type
conf
DOI
10.1109/ESimE.2012.6191695
Filename
6191695
Link To Document