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A SIMULATION OF THE SOLID OXIDE FUEL CELL ELECTROCHEMICAL LIGHT OFF PHENOMENON

机译:固体氧化物燃料电池电化学脱落现象的模拟

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During latter-stage, "start-up" heating of a solid oxide fuel cell (SOFC) stack to a desired operating temperature, heat may be generated in an accelerating manner during the establishment of electrochemical reactions. This is because a temperature rise in the stack causes an acceleration of electrochemical transport given the typical Arrhenius nature of the electrolyte conductivity. Considering a potentiostatic condition (i.e., prescribed cell potential), symbiosis thus occurs because greater current prevalently leads to greater by-product heat generation, and vice versa. This interplay of the increasing heat generation and electrochemistry is termed "light off", and an initial model has been developed to characterize this important thermal cycling phenomenon. The results of the simulation begin elucidating the prospect of using cell potential as well as other electrochemical operating conditions (e.g., reactants utilization) as dynamic controls in managing light off transients and possibly mitigating thermal cycling issues.
机译:在后级期间,将固体氧化物燃料电池(SOFC)堆叠的“启动”加热到所需的操作温度,在建立电化学反应期间可以以加速方式产生热量。这是因为施加堆栈中的温度升高导致电化学传输的加速度给出电解质导电性的典型Arhenius性质。考虑到电位诱导条件(即规定的细胞势),因此发生共生,因为较大的电流普遍导致更大的副产物发热,反之亦然。增加的发热和电化学的这种相互作用被称为“轻微关闭”,并且已经开发了初始模型以表征这种重要的热循环现象。模拟的结果开始阐明使用细胞势的前景以及其他电化学操作条件(例如,反应物利用)作为在管理灯路瞬变和可能减轻热循环问题时的动态控制。

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