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首页> 外文期刊>International journal of hydrogen energy >Modeling and parametric study of a 1 kW_e HT-PEMFC-based residential micro-CHP system
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Modeling and parametric study of a 1 kW_e HT-PEMFC-based residential micro-CHP system

机译:基于1 kW_e HT-PEMFC的住宅微型CHP系统的建模和参数研究

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A detailed thermodynamic, kinetic and geometric model of a micro-CHP (Combined-Heat-and-Power) residential system based on High Temperature-Proton Exchange Membrane Fuel Cell (HT-PEMFC) technology is developed, implemented and validated. HT-PEMFC technology is investigated as a possible candidate for fuel cell-based residential micro-CHP systems, since it can operate at higher temperature than Nafion-based fuel cells, and therefore can reach higher cogeneration efficiencies. The proposed system can provide electric power, hot water, and space heating for a typical Danish single-family household. A complete fuel processing subsystem, with all necessary balance-of-plant components, is modeled and coupled to the fuel cell stack subsystem. The micro-CHP system's synthesis/ design and operational pattern is analyzed by means of a parametric study. The parametric study is conducted to determine the most viable system/component design based on maximizing total system efficiency, without violating the requirements of the system. Four decision variables (steam-to-carbon ratio, fuel cell operating temperature, combustor temperature and hydrogen stoichiometry) were parameterized within feasible limits to provide insight on their effect on the overall performance of the proposed system under study and also to provide input on more efficient design in the future. The system is designed to provide maximum loads of 1 kW_e and 2 kW_(th). A sensitivity analysis is applied to investigate the influence of the most important parameters on the simulated performance of the system.
机译:开发,实施和验证了基于高温质子交换膜燃料电池(HT-PEMFC)技术的微型CHP(热电联产)住宅系统的详细热力学,动力学和几何模型。 HT-PEMFC技术被研究为基于燃料电池的住宅微型CHP系统的可能候选者,因为它可以比基于Nafion的燃料电池在更高的温度下运行,因此可以达到更高的热电联产效率。拟议的系统可以为典型的丹麦单户家庭提供电力,热水和空间供暖。具有所有必要的工厂平衡组件的完整燃料处理子系统被建模并耦合到燃料电池堆子系统。通过参数研究分析了微型热电联产系统的综合/设计和运行模式。进行参数化研究是在不违反系统要求的前提下,基于使总系统效率最大化来确定最可行的系统/组件设计。在可行的范围内对四个决策变量(汽碳比,燃料电池工作温度,燃烧器温度和氢化学计量)进行了参数设置,以了解它们对所研究系统的总体性能的影响,并提供更多信息。未来高效的设计。该系统旨在提供1 kW_e和2 kW_(th)的最大负载。灵敏度分析用于调查最重要参数对系统仿真性能的影响。

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