DocumentCode
3321538
Title
Experimental study for a double glazed forced-convection solar collector/regenerator for open-cycle absorption cooling system
Author
Yang, Ru ; Wang, Pai-Lu
Author_Institution
Inst. of Mech. Eng., Nat. Sun Yat-Sen Univ., Kaohsiung, Taiwan
Volume
3
fYear
1996
fDate
11-16 Aug 1996
Firstpage
1697
Abstract
An experimental study of a double-glazed forced-convection solar collector/regenerator for absorption solar cooling is presented. The south facing experimental solar collector/regenerator with 10° slope is located at Kaohsiung, Taiwan at 120°18´E longitude and 22°34´N latitude. The size of the collector is 1 m wide and 7 m long. Previous study for a single-glazed forced-convection solar collector/regenerator operated at the same location has shown to have a best day-average efficiency of 17%. In order to raise the system performance, a double-glazed collector/regenerator is constructed such that air can be pre-heated in the upper channel flow. The pre-heated air is then conducted into the lower channel where it contacts with the film flow of solar heated lithium-chloride solution and regenerates the solution by carrying out the evaporated water vapor. Since the preheated air has lower relative humidity ratio, the regeneration driving potential is increased. The present study shows that the best day-average efficiency can reach 20% which increases the feasibility of the open-cycle absorption solar cooling system. Effects of controlling parameters on the collector/regenerator performance are studied, and heat and mass transfer correlations are also presented for design purposes
Keywords
absorption; cooling; forced convection; humidity; mass transfer; refrigeration; solar absorber-convertors; solar power; 1 m; 20 percent; 7 m; Taiwan; day-average efficiency; double glazed forced-convection solar collector/regenerator; evaporated water vapor; experimental study; heat transfer correlations; mass transfer correlations; open-cycle absorption cooling system; performance improvement; regeneration driving potential; relative humidity ratio; upper channel flow; Absorption; Conductive films; Heat transfer; Humidity; Solar cooling; Solar heating; System performance; Temperature control; Water heating; Weight control;
fLanguage
English
Publisher
ieee
Conference_Titel
Energy Conversion Engineering Conference, 1996. IECEC 96., Proceedings of the 31st Intersociety
Conference_Location
Washington, DC
ISSN
1089-3547
Print_ISBN
0-7803-3547-3
Type
conf
DOI
10.1109/IECEC.1996.553357
Filename
553357
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