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首页> 外文期刊>Zeitschrift fur Arznei- und Gewurzpflanzen >Application of Photo-Electrochemically Generated Hydrogen with Fuel Cell Based Micro-Combined Heat and Power: A Dynamic System Modelling Study
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Application of Photo-Electrochemically Generated Hydrogen with Fuel Cell Based Micro-Combined Heat and Power: A Dynamic System Modelling Study

机译:光电化学产生的氢气基于燃料电池的微梳理热量和动力:动态系统建模研究

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摘要

Photo-electrochemical (PEC) hydrogen generation is a promising technology and alternative to photovoltaic (PV)-electrolyser combined systems. Since there are no commercially available PEC cells and very limited field trials, a computer simulation was used to assess the efficacy of the approach for different domestic applications. Three mathematical models were used to obtain a view on how PEC generated hydrogen is able to cover demands for a representative dwelling. The analysed home was grid-connected and used a fuel cell based micro-CHP (micro-combined heat and power) system. Case studies were carried out that considered four different photo-electrode technologies to capture a range of current and possible future device efficiencies. The aim for this paper was to evaluate the system performance such as efficiency, fuel consumption and CO2 reduction capability. At the device unit level, the focus was on photo-electrode technological aspects, such as the effect of band-gap energy represented by different photo-materials on productivity of hydrogen and its uncertainty caused by the incident photon-to-current conversion efficiency (IPCE), which is highly electrode preparation specific. The presented dynamic model allows analysis of the performance of a renewable energy source integrated household with variable loads, which will aid system design and decision-making.
机译:光电化学(PEC)氢气产生是一种有前途的技术和替代光伏(PV) - 电解器组合系统。由于没有市售的PEC细胞和非常有限的现场试验,因此使用计算机模拟来评估不同国内应用的方法的功效。使用三种数学模型来获得PEC生成的氢气能够涵盖代表性住宅需求的观点。分析的家庭被网格连接,并使用了基于燃料电池的微型CHP(微结合热电和电力)系统。进行案例研究,考虑了四种不同的光电技术,以捕获一系列电流和可能的未来设备效率。本文的目标是评估效率,燃料消耗和二氧化碳减少能力等系统性能。在器件单元级,重点是光电技术方面,例如不同光素所示的带间隙能量对氢气生产率的影响及其不确定度引起的,由事件光子 - 电流转换效率( IPCE),它是高电极制备特异性。呈现的动态模型允许分析可变载荷的可再生能源集成家庭的性能,这将有助于系统设计和决策。

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