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Study of the characteristics of temperature rise and coolant flow rate control during malfunction of PEM fuel cells

机译:PEM燃料电池故障升温和冷却剂流速控制特征的研究

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In actual PEM fuel cell systems, the coolant flow rate is generally controlled to maintain a preset temperature at the coolant outlet. This implies that a change in coolant supply flow rate is a good early indicator of a malfunctioning PEM fuel cell stack and system components. In this study, various fuel cell malfunctions are simulated based on the practical coolant flow control strategy by using a three-dimensional, two-phase, multiscale PEM fuel cell model developed in our previous studies. The focus is on analysis of the characteristics of coolant flow rate change along with voltage degradation in various fuel cell malfunction cases. The model predictions show that in general, the coolant flow rate tends to increase proportionally with the degree of voltage degradation, but the increase in temperature inside the membrane electrode assembly (MEA) is not always related to the voltage drop and is influenced more directly by local current density distribution. Although the present numerical comparison between the normal and malfunctioning cases is conducted at the low current density of 0.3 A cm(-2) , the general cell behavior will not be altered at higher current densities due to inverse relationship between cell performance and waste heat generation. The present work elucidates the complex interplay among increase in coolant flow rate, increase in MEA temperature, voltage drop, and change in local current density distribution when a PEM fuel cell malfunctions. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在实际PEM燃料电池系统中,通常控制冷却剂流速以在冷却剂出口处保持预设温度。这意味着冷却剂供应流量的变化是故障PEM燃料电池堆和系统部件的良好早期指标。在该研究中,通过使用我们之前的研究中开发的三维两相,通过三维两相的多尺寸PEM燃料电池模型来模拟各种燃料电池故障。重点是分析冷却剂流量变化的特性以及各种燃料电池故障情况下的电压劣化。模型预测表明,通常,冷却剂流量随着电压劣化的程度,冷却剂流量趋于按比例成比例地增加,但膜电极组件(MEA)内的温度的增加并不总是与电压降相关,并且通过局部电流密度分布。尽管正常和故障情况下的本发明的数值比较以0.3Acm(-2)的低电流密度进行,但由于细胞性能与废热发电之间的反比关系,通用细胞行为不会在较高的电流密度下改变。当前工作阐明了在PEM燃料电池发生故障时,冷却剂流量增加,MEA温度增加,电压降,局部电流密度分布的变化的复杂相互作用。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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