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Optimal Operational Strategies for Degrading Solid Oxide Fuel Cells

机译:固体氧化物燃料电池降解的最佳操作策略

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The operational strategy for a solid oxide fuel cell undergoing degradation is investigated in this paper. While the perfect fuel cell would undergo no degradation, practical fuel cells of any type (e.g., polymer electrolyte, etc.), like batteries, will degrade. For fuel cells, dominant mechanisms of degradation will depend on materials of construction, operating conditions, and operational history. The common practice is to linearize degradation. Giving a linear representation to degradation rate, however, gives a linear structure to the area specific resistance, ASR(t). Experimental evidence shows that ASR(t) is commonly a parabolic function. Four important operational strategies are evaluated for degrading fuel cells - constant voltage, constant current, maximum power, and constant design power. This work demonstrates that degrading fuel cells exhibit a natural exergetic efficiency for a given fuel utilization. This exergetic efficiency is constant along the path of maximum power. To operate at this exergetic efficiency is to operate along the path of maximum power. The path of maximum power can be pursued as an operational strategy by varying the fuel flow rate (fuel cell current) at constant fuel utilization. A separate question of possible concern is what is the maximum allowable current.
机译:本文研究了固体氧化物燃料电池降解的运行策略。尽管理想的燃料电池不会降解,但是像电池那样的任何类型的实际燃料电池(例如,聚合物电解质等)都会降解。对于燃料电池,主要的降解机理将取决于构造材料,运行条件​​和运行历史。通常的做法是线性化降解。但是,对降解速率进行线性表示,可以得到比电阻ASR(t)的线性结构。实验证据表明,ASR(t)通常是抛物线函数。评估了用于降解燃料电池的四个重要操作策略-恒定电压,恒定电流,最大功率和恒定设计功率。这项工作表明,对于给定的燃料利用率,降解的燃料电池表现出自然的高能效率。沿最大功率的路径,这种有效效率是恒定的。要以这种有效率的效率进行操作,就是要沿着最大功率的路径进行操作。通过在恒定燃料利用率下改变燃料流速(燃料电池电流),可以将最大功率路径作为一种操作策略。另一个可能需要关注的问题是最大允许电流是多少。

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