Feasibility of high efficient solar hydrogen generation system integrating photovoltaic cell/photon-enhanced thermionic emission and high-temperature electrolysis cell

[Display omitted] •Novel solar hydrogen and heat cogeneration system based on PVT is proposed.•Power is generated in a wide temperature range by the combination of PV and PETE.•Thermodynamic analyses of PV cell, PETE, and SOEC are conducted.•Residual heat and electricity from PV and PETE are used fo...

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Veröffentlicht in:Energy conversion and management 2020-04, Vol.210, p.112699, Article 112699
Hauptverfasser: Wang, Hongsheng, Kong, Hui, Pu, Zhigang, Li, Yao, Hu, Xuejiao
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Sprache:eng
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Zusammenfassung:[Display omitted] •Novel solar hydrogen and heat cogeneration system based on PVT is proposed.•Power is generated in a wide temperature range by the combination of PV and PETE.•Thermodynamic analyses of PV cell, PETE, and SOEC are conducted.•Residual heat and electricity from PV and PETE are used for H2 generation in SOEC.•Solar exergy efficiency and STH efficiency are up to 55.99% and 29.61%. The integration of solar photovoltaic (PV) cell and high-temperature electrolysis cell to produce hydrogen is a promising means of solar energy storage and hydrogen harvesting. In this paper, a novel hydrogen production system is proposed by combining PV cell and photon-enhanced thermionic emission cell (PETE) with the solid oxide electrolysis cell (SOEC). The inlet steam of SOEC could be heated to a high temperature ranging from 800 °C to 1000 °C by the waste heat recovery of the PV cell and PETE module. The high-temperature steam and the electricity produced by PV cell and PETE module are fed into the SOEC together for H2 generation. High temperature electrolysis could decrease the Gibbs free energy required in water splitting, leading to less electricity cost at the expense of consuming more heat. PV cells can also be more efficient in a relatively low operation temperature by the waste heat recovery, and more electricity would be generated for hydrogen production. The first-law thermodynamic efficiency, solar exergy efficiency and solar-to-hydrogen efficiency (STH efficiency) of this proposed system could reach 77.05%, 55.99%, and 29.61%, respectively, which are expected to provide a theoretic basis for the research and application of convenient and efficient solar hydrogen generation.
ISSN:0196-8904
1879-2227
DOI:10.1016/j.enconman.2020.112699