Experimental study of the energy and exergy performance for a pressurized volumetric solar receiver

•Performance of a pressurized volumetric solar receiver is experimentally discussed.•Energy and exergy analysis is performed during a two-hour period in the morning.•The efficiency of the solar receiver is maintained at around 60% under steady state.•The highest exergy efficiency and energy efficien...

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Veröffentlicht in:Applied thermal engineering 2016-07, Vol.104, p.212-221
Hauptverfasser: Zhu, Jianqin, Wang, Kai, Li, Guoqing, Wu, Hongwei, Jiang, Zhaowu, Lin, Feng, Li, Yongliang
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Sprache:eng
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Zusammenfassung:•Performance of a pressurized volumetric solar receiver is experimentally discussed.•Energy and exergy analysis is performed during a two-hour period in the morning.•The efficiency of the solar receiver is maintained at around 60% under steady state.•The highest exergy efficiency and energy efficiency is approximately 36% and 87%. This article presents an experimental investigation of the heat transfer characteristics as well as energy and exergy performance for a pressurized volumetric solar receiver under variable mass flow rate conditions. During a two-hour period of continuous operation in the morning, the solar irradiance is relatively stable and maintained at approximately 600W/m2, which is beneficial for analyzing the energy and exergy performance of the solar receiver. Experimental results show that the mass flow rate fluctuation has insignificant effect on the solar receiver outlet temperature, whereas the mass flow rate plays an important role in the solar receiver power, energy efficiency and exergy efficiency. The efficiency of the solar receiver is normally above 55% with the highest efficiency of 87%, and under steady state operating conditions the efficiency is maintained at approximately 60%. A very low value of the heat loss factor (0.014kW/K) could be achieved during the current steady state operating conditions. The highest exergy efficiency is approximately 36%. In addition, as the temperature difference increases, the impact of the exergy factor increases. The highest exergy factor is 0.41 during the entire test.
ISSN:1359-4311
DOI:10.1016/j.applthermaleng.2016.05.075