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A Fully Coupled Three-Dimensional Dynamic Model of Polymeric Membranes for Fuel Cells

机译:燃料电池聚合物膜的全耦合三维动力学模型

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Proton exchange membrane fuel cells (PEMFCs) are very promising for both mobile and mid-power stationary applications. Their key component is the solid electrolyte, made with a ionomer membrane with thicknesses in the order of $10^{2} mu{rm m}$, the proton exchange membrane (PEM) that provides proton conduction. This property relies on the hydration state of the membrane, so that water flow and proton conduction are strictly related. As the PEM conductivity relies on a hopping mechanism over barrier energy levels, conductivity is also strongly temperature dependent. This paper presents a highly nonlinear fully coupled dynamic numerical model of the membrane that includes proton conduction, water flow, heat generation and transport and hydration-dependent conductivity. The 3-D model is discretized by means of the finite element method and is used to simulate a typical laboratory PEM. The numerical model is used also for detecting hot spots associated to fluctuations of the PEM thickness.
机译:质子交换膜燃料电池(PEMFC)对于移动和中功率固定式应用都非常有前途。它们的关键成分是固体电解质,它由离聚物膜制成,其厚度约为10 ^ {2} mu {rm m} $,是提供质子传导的质子交换膜(PEM)。该性质取决于膜的水合状态,因此水流和质子传导严格相关。由于PEM的电导率取决于势垒能级上的跳跃机制,因此电导率也与温度密切相关。本文提出了一种膜的高度非线性全耦合动力学数值模型,该模型包括质子传导,水流,热量产生和传输以及水合依赖性电导率。 3-D模型通过有限元方法离散化,并用于模拟典型的实验室PEM。该数值模型还用于检测与PEM厚度的波动相关的热点。

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