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The Load Dependent Purge Strategy

机译:负载相关的清除策略

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摘要

In fuel cell systems with an anode recirculation cycle that runs overstoichiometrically, an undesired enrichment of nitrogen and water vapor occurs due to their diffusion through the membrane-electrode-assembly (MEA). This causes an impairment of the power density. So far, this phenomenon was avoided by a time dependent purge strategy. During this process a lot of unconsumed hydrogen gets wasted. A more efficient purge strategy that reduces the waste and improves the system efficiency, which operates load dependently by means of the mass transfer coefficient, is introduced. A comparison of the system efficiency with and without the load-dependent-purge-strategy (LPS) is made and discussed in order to demonstrate the effectiveness of the new method. Static as well as dynamic system simulations were performed for this purpose. A notable improvement of the system efficiency of up to 10% with LPS was achieved. With LPS the purge power losses could be markedly reduced. This reformation also induces an improvement of the system efficiency, which brings us a considerable step forward towards a longer reach. Moreover, LPS is not restricted to a certain fuel cell system and thus affords a more flexible and versatile employment than its predecessor.
机译:在具有以化学计量比过量运行的阳极再循环循环的燃料电池系统中,由于氮和水蒸气通过膜电极组件(MEA)扩散而发生了不希望的氮和水蒸气富集。这导致功率密度的降低。到目前为止,通过依赖时间的清除策略避免了这种现象。在此过程中,浪费了大量未消耗的氢气。引入了一种更有效的净化策略,该策略可以减少浪费并提高系统效率,该策略通过传质系数来独立地运行负载。进行并讨论了有无负载依赖的吹扫策略(LPS)时系统效率的比较,以证明新方法的有效性。为此进行了静态和动态系统仿真。使用LPS可以将系统效率显着提高10%。使用LPS,可以显着减少吹扫功率损失。这种改革还可以提高系统效率,从而使我们朝着更长的发展方向迈出了相当大的一步。此外,LPS不限于特定的燃料电池系统,因此比其前身提供了更加灵活和通用的使用方式。

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