Electric power generation from solar pond using combined thermosyphon and thermoelectric modules

Salinity-gradient solar ponds can collect and store solar heat at temperatures up to 80 °C. As a result, these water bodies act as a renewable source of low grade heat which can be utilized for heating and power generation applications. In this paper, design and test result of the combined system of...

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Main Authors: Randeep Singh, Sura Tundee, Aliakbar Akbarzadeh
Format: Journal
Published: 2018
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http://cmuir.cmu.ac.th/jspui/handle/6653943832/49920
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Institution: Chiang Mai University
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spelling th-cmuir.6653943832-499202018-09-04T04:24:01Z Electric power generation from solar pond using combined thermosyphon and thermoelectric modules Randeep Singh Sura Tundee Aliakbar Akbarzadeh Energy Materials Science Salinity-gradient solar ponds can collect and store solar heat at temperatures up to 80 °C. As a result, these water bodies act as a renewable source of low grade heat which can be utilized for heating and power generation applications. In this paper, design and test result of the combined system of thermosyphon and thermoelectric modules (TTMs) for the generation of electricity from low grade thermal sources like solar pond is discussed. In solar ponds, temperature difference in the range 40-60 °C is available between the lower convective zone (LCZ) and the upper convective zone (UCZ) which can be applied across the hot and cold surfaces of the thermoelectric modules to make it work as a power generator. The designed system utilizes gravity assisted thermosyphon to transfer heat from the hot bottom to the cold top of the solar pond. Thermoelectric cells (TECs) are attached to the top end of the thermosyphon which lies in the UCZ thereby maintaining differential temperature across them. A laboratory scale model based on the proposed combination of thermosyphon and thermoelectric cells was fabricated and tested under the temperature differences that exist in the solar ponds. Result outcomes from the TTM prototype have indicated significant prospects of such system for power generation from low grade heat sources particularly for remote area power supply. A potential advantage of such a system is its ability to continue to provide useful power output at night time or on cloudy days because of the thermal storage capability of the solar pond. © 2010 Elsevier Ltd. 2018-09-04T04:20:20Z 2018-09-04T04:20:20Z 2011-02-01 Journal 0038092X 2-s2.0-78651373034 10.1016/j.solener.2010.11.012 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=78651373034&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/49920
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Energy
Materials Science
spellingShingle Energy
Materials Science
Randeep Singh
Sura Tundee
Aliakbar Akbarzadeh
Electric power generation from solar pond using combined thermosyphon and thermoelectric modules
description Salinity-gradient solar ponds can collect and store solar heat at temperatures up to 80 °C. As a result, these water bodies act as a renewable source of low grade heat which can be utilized for heating and power generation applications. In this paper, design and test result of the combined system of thermosyphon and thermoelectric modules (TTMs) for the generation of electricity from low grade thermal sources like solar pond is discussed. In solar ponds, temperature difference in the range 40-60 °C is available between the lower convective zone (LCZ) and the upper convective zone (UCZ) which can be applied across the hot and cold surfaces of the thermoelectric modules to make it work as a power generator. The designed system utilizes gravity assisted thermosyphon to transfer heat from the hot bottom to the cold top of the solar pond. Thermoelectric cells (TECs) are attached to the top end of the thermosyphon which lies in the UCZ thereby maintaining differential temperature across them. A laboratory scale model based on the proposed combination of thermosyphon and thermoelectric cells was fabricated and tested under the temperature differences that exist in the solar ponds. Result outcomes from the TTM prototype have indicated significant prospects of such system for power generation from low grade heat sources particularly for remote area power supply. A potential advantage of such a system is its ability to continue to provide useful power output at night time or on cloudy days because of the thermal storage capability of the solar pond. © 2010 Elsevier Ltd.
format Journal
author Randeep Singh
Sura Tundee
Aliakbar Akbarzadeh
author_facet Randeep Singh
Sura Tundee
Aliakbar Akbarzadeh
author_sort Randeep Singh
title Electric power generation from solar pond using combined thermosyphon and thermoelectric modules
title_short Electric power generation from solar pond using combined thermosyphon and thermoelectric modules
title_full Electric power generation from solar pond using combined thermosyphon and thermoelectric modules
title_fullStr Electric power generation from solar pond using combined thermosyphon and thermoelectric modules
title_full_unstemmed Electric power generation from solar pond using combined thermosyphon and thermoelectric modules
title_sort electric power generation from solar pond using combined thermosyphon and thermoelectric modules
publishDate 2018
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=78651373034&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/49920
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