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Design and optimization of a combined solar thermophotovoltaic power generation and solid oxide electrolyser for hydrogen production

机译:太阳能热光伏发电与固体氧化物电解槽联合用于制氢的设计与优化

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摘要

This study proposes a novel integrated solar-TPV device with a solid oxide electrolyzer cell to utilize the solar energy for hydrogen production. It explores the possibility of employing a high temperature solar-thermal photovoltaic power generation technology as a power source for a steam electrolyzer as a high-efficiency and applicable hydrogen production method. Mathematical and electrochemical modeling of the subsystems is conducted and performance of the system in different operating conditions such as current density, temperature, and steam mole fraction of SOEC is analyzed. An STPV device of multiwalled carbon nanotube (MW-CNT) absorber and 1D Si/SiO2 PhC emitter and InGaAsSb PV cell is employed to maximize the solar energy utilization. A detailed system level model in this part is conducted and the solar to electrical efficiency of the scaled-up STPV device reached to 17%. The results show that this STPV device can provide the power demand in SOEC system. A planar cathode-supported high-temperature electrolyzer cell was designed to perform in an exothermic mode and the result was validated by the experimental data precisely. The sensitivity analysis showed that 7458 kg/h hydrogen can be produced in the proposed system with 54% electrical for SOEC efficiency. The major implementation challenges are presented to provide a comprehensive insight into performance, potential development, limitations and challenges of the integrated system. The proposed combined system shows the overall efficiency can reach to 34%. This high efficiency makes this novel hybrid system a competitive option in solar based hydrogen production technologies.
机译:这项研究提出了一种新型的带有固体氧化物电解槽的集成式太阳能-TPV装置,可以利用太阳能生产氢气。它探索了将高温太阳能热光伏发电技术用作蒸汽电解槽的电源的可能性,以此作为一种高效且适用的制氢方法。进行了子系统的数学和电化学建模,并分析了系统在不同工作条件下的性能,例如电流密度,温度和SOEC的蒸汽摩尔分数。采用多壁碳纳米管(MW-CNT)吸收器,1D Si / SiO2 PhC发射极和InGaAsSb PV电池的STPV器件来最大程度地利用太阳能。进行了本部分的详细系统级模型,规模化STPV器件的太阳能电效率达到了17%。结果表明,这种STPV器件可以满足SOEC系统的功率需求。将平面阴极支撑的高温电解池设计为以放热模式运行,并通过实验数据精确验证了结果。灵敏度分析表明,在拟议的系统中可以产生7458 kg / h的氢气,其中54%的电用于SOEC效率。提出了主要的实施挑战,以提供对集成系统的性能,潜在发展,局限性和挑战的全面了解。建议的组合系统显示总体效率可以达到34%。如此高的效率使这种新颖的混合动力系统成为太阳能制氢技术的竞争选择。

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