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首页> 外文期刊>Electrochimica Acta >A transient Pseudo-3D model of the PEM fuel cell for the analysis of dead-ended anode and anode bleeding operation modes
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A transient Pseudo-3D model of the PEM fuel cell for the analysis of dead-ended anode and anode bleeding operation modes

机译:用于分析死端阳极和阳极出血操作模式的PEM燃料电池的瞬态伪3D模型

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摘要

The high energy density of hydrogen is very advantageous for automotive applications, however the high cost and low durability of proton exchange membrane (PEM) fuel cells limit their commercial use. The anode-bleeding operation mode offers a very high hydrogen utilization and cost reduction by eliminating the components necessary for the recovery of hydrogen in the flow-through mode and avoids the carbon corrosion reaction, which causes degradation of the catalyst layer when the bleeding rate is set to zero in the dead-ended mode. A two-phase, non-isothermal, transient and pseudo-three-dimensional model is developed here to study the cell performance and carbon corrosion during dead-ended and anode bleeding operation modes. The model is validated against the experimental data from the literature and used to investigate the effects of the geometric and operation parameters on the voltage transient during dead-ended anode (DEA) operation mode. Results demonstrate that a lower load-current density, higher anode pressure, lower relative humidity at the cathode inlet, higher stoichiometric flow in the cathode, higher cell temperature, and shorter, deeper and wider channels can improve the cell performance under the DEA operation. The bleeding rate is optimized to sustain a stable transient cell voltage without carbon corrosion in the cathode catalyst layer while the hydrogen utilization is more than 99%. (C) 2019 Elsevier Ltd. All rights reserved.
机译:氢的高能量密度是用于汽车应用的非常有利的,但是高成本和质子交换膜(PEM)燃料电池的耐久性低限制了它们的商业用途。阳极排气操作模式通过流模式提供了一个非常高的氢气利用率和降低成本,通过消除必需的氢的回收部件,避免了碳腐蚀反应,这会导致催化剂层的劣化,当出血率是在死端模式设置为零。两相,非等温,瞬态和伪三维模型在这里开发,研究期间死亡端和阳极排气操作模式下的电池性能和碳腐蚀。该模型是从文献验证针对实验数据和用于研究对电压瞬变的几何和操作参数的死端阳极(DEA)操作模式期间的效果。结果表明,较低的负载电流密度,更高的阳极压力,降低在阴极入口相对湿度,在阴极更高的化学计量流量,更高的细胞的温度,和更短的,更深和更宽的通道可以提高DEA操作下的电池性能。出血率被最优化,以维持无碳腐蚀稳定的瞬时电池电压在阴极催化剂层,而氢利用率为99%以上。 (c)2019 Elsevier Ltd.保留所有权利。

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