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SOFC Stack Model for Integration Into a Hybrid System: Stack Response to Control Variables

机译:用于集成到混合系统中的SOFC堆栈模型:堆栈响应控制变量

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Due to the tight coupling of physical processes inside solid oxide fuel cells (SOFCs), efficient control of these devices depends largely on the proper pairing of controlled and manipulated variables. The present study investigates the uncontrolled, dynamic behavior of an SOFC stack that is intended for use in a hybrid SOFC-gas turbine (GT) system. A numerical fuel cell model is developed based on charge, species mass, energy, and momentum balances, and an equivalent circuit is used to combine the fuel cell's irreversibilities. The model is then verified on electrochemical, mass, and thermal timescales. The open-loop response of the average positive electrode-electrolyte-negative electrode (PEN) temperature, fuel utilization, and SOFC power to step changes in the inlet fuel flow rate, current density, and inlet air flow rate is simulated on different timescales. Results indicate that manipulating the current density is the quickest and most efficient way to change the SOFC power. Meanwhile, manipulating the fuel flow is found to be the most efficient way to change the fuel utilization. In future work, it is recommended that such control strategies be further analyzed and compared in the context of a complete SOFC-GT system model.
机译:由于固体氧化物燃料电池内的物理过程的紧密耦合(SOFC),这些装置的有效控制主要取决于受控和操纵变量的适当配对。本研究研究了用于混合SOFC - 燃气轮机(GT)系统的SOFC叠层的不受控制的动态行为。基于充电,物种质量,能量和动量余额,使用数值燃料电池模型,并且使用等效电路来结合燃料电池的不可逆转。然后在电化学,质量和热尺寸上验证该模型。平均正电极 - 电解质 - 负电极(笔)温度,燃料利用和SOFC电力在不同的时间尺寸上模拟了入口燃料流量,电流密度和入口空气流量的步骤变化的开环响应。结果表明,操纵电流密度是改变SOFC电力的最快和最有效的方法。同时,发现燃料流量被发现是改变燃料利用的最有效的方法。在未来的工作中,建议在完整的SOFC-GT系统模型的上下文中进一步分析并比较这些控制策略。

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