HUSCAP logo Hokkaido Univ. logo

Hokkaido University Collection of Scholarly and Academic Papers >
Graduate School of Engineering / Faculty of Engineering >
Peer-reviewed Journal Articles, etc >

Performance analysis of a double-pass thermoelectric solar air collector

Files in This Item:
SolarTE_SolarMat2.pdf141.55 kBPDFView/Open
Please use this identifier to cite or link to this item:http://hdl.handle.net/2115/34827

Title: Performance analysis of a double-pass thermoelectric solar air collector
Authors: Lertsatitthanakorn, C. Browse this author
Khasee, N. Browse this author
Atthajariyakul, S. Browse this author
Soponronnarit, S. Browse this author
Therdyothin, A. Browse this author
Suzuki, Ryosuke O. Browse this author →KAKEN DB
Keywords: thermal efficiency
conversion efficiency
overall efficiency
power output
Issue Date: Sep-2008
Publisher: Elsevier Science Bv
Journal Title: Solar Energy Materials and Solar Cells
Volume: 92
Issue: 9
Start Page: 1105
End Page: 1109
Publisher DOI: 10.1016/j.solmat.2008.03.018
Abstract: The thermoelectric (TE) solar air collector, sometimes known as the hybrid solar collector, generates both thermal and electrical energies simultaneously. A double-pass TE solar air collector has been developed and tested. The TE solar collector was composed of transparent glass, air gap, an absorber plate, thermoelectric modules and rectangular fin heat sink. The incident solar radiation heats up the absorber plate so that a temperature difference is created between the thermoelectric modules that generates a direct Current. Only a small part of the absorbed solar radiation is converted to electricity, while the rest increases the temperature of the absorber plate. The ambient air flows through the heat sink located in the lower channel to gain heat. The heated air then flows to the upper channel where it receives additional heating from the absorber plate. Improvements to the thermal and overall efficiencies of the system can be achieved by the use of the double-pass collector system and TE technology. Results show that the thermal efficiency increases as the air flow rate increases. Meanwhile, the electrical power output and the conversion efficiency depend on the temperature difference between the hot and cold side of the TE modules. At a temperature difference of 22.8 degrees C, the unit achieved a power output of 2.13 W and the conversion efficiency of 6.17%. Therefore, the proposed TE solar collector concept is anticipated to contribute to wider applications of the TE hybrid systems due to the increased overall efficiency. (C) 2008 Elsevier B.V. All rights reserved.
Relation: http://www.sciencedirect.com/science/journal/09270248
Type: article (author version)
URI: http://hdl.handle.net/2115/34827
Appears in Collections:工学院・工学研究院 (Graduate School of Engineering / Faculty of Engineering) > 雑誌発表論文等 (Peer-reviewed Journal Articles, etc)

Submitter: 鈴木 亮輔

Export metadata:

OAI-PMH ( junii2 , jpcoar_1.0 )

MathJax is now OFF:


 

 - Hokkaido University