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Investigation of Atomistic Scale Transport Phenomena of the Proton Exchange Membrane Fuel Cell

机译:质子交换膜燃料电池的原子尺度输运现象研究

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This paper studies the transport phenomena inside the electrolyte of proton exchange membrane fuel cells (PEMFCs) using atomistic simulation techniques. The investigated material of the electrolyte is Nafion, which is the most widely adapted polymer membrane in low-temperature fuel cells. The molecular dynamics simulation system includes part of the Nafion structure, numerous water molecules, and the transporting cations. The cations are assumed to be hydroxoniums ((H{sub}3O){sup}+), which are a hydrogen proton combined with a water molecule. Simulation results indicated that the electrostatic energy dominated the other potential energies in the total internal energy analysis. Clusters of water molecules tend to move toward the sulfonic acid group in the Nafion fragment, where the hydrophilic/hydrophobic characteristics can be observed. The transport phenomena of hydroxoniums are classified into two categories-continuous migration and noncontinuous hopping. The self-diffusion coefficients of the hydroxoniums and the water molecules in the membrane were evaluated to be 3.476×10{sup}(-5) cm{sup}2/s and 4.993×10{sup}(-5) cm{sup}2/s respectively, based on the Einstein relation. The calculated self-diffusion coefficients are of the same order of magnitude as the experimental results, which indicates this atomistic simulation is reaching more and more practical in engineering analysis.
机译:本文使用原子模拟技术研究了质子交换膜燃料电池(PEMFC)电解质内部的传输现象。被研究的电解质材料是Nafion,它是低温燃料电池中应用最广泛的聚合物膜。分子动力学模拟系统包括Nafion结构的一部分,许多水分子和运输阳离子。假定阳离子为氢氧鎓((H {sub} 3O){sup} +),它们是与水分子结合的氢质子。仿真结果表明,在总内部能量分析中,静电能主导了其他势能。水分子团簇倾向于向Nafion片段中的磺酸基移动,在那里可以观察到亲水/疏水特性。氢氧根的迁移现象可分为两类:连续迁移和非连续跳跃。膜中氢氧根和水分子的自扩散系数估计为3.476×10 {sup}(-5)cm {sup} 2 / s和4.993×10 {sup}(-5)cm {sup } 2 / s,基于爱因斯坦关系。计算出的自扩散系数与实验结果处于同一数量级,这表明这种原子模拟在工程分析中正变得越来越实用。

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