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Effects of radially dependent parameters on proton transport in polymer electrolyte membrane nanopores

机译:径向相关参数对聚合物电解质膜纳米孔中质子传输的影响

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摘要

A three-dimensional continuum model is explored to investigate the effects of radially dependent system parameters, such as relative permittivity and viscosity, on the transport of proton and water in nanoscale cylindrical pores of a fully hydrated polymer electrolyte membrane (PEM). The model employs Poisson, Nernst-Planck, and Stokes equations. Based on evidence from the literature for the presence of a stagnant water layer near the pore surface, we assume that a no-slip surface is located inside the pore, a few Angstroms from the pore wall. To solve the system numerically, the steady-state solution for the transport of protons and water is considered to be a perturbation around the equilibrium solution. Our results indicate that a radial variation of relative permittivity has the greatest influence on pore conductivity, reducing it by about 50 when compared to that of constant permittivity. On the other hand, viscosity plays the dominant role when the effective water drag within such pores is considered. We conclude that a continuum approach, including constant viscosity, is applicable in nanoscale models provided that the location of the no-slip surface is properly specified and the radial variation of the relative permittivity is taken into consideration.
机译:探索了三维连续体模型,以研究径向相关系统参数(例如相对介电常数和粘度)对完全水合的聚合物电解质膜(PEM)的纳米级圆柱孔中质子和水的传输的影响。该模型使用了Poisson,Nernst-Planck和Stokes方程。根据文献的证据,在孔表面附近存在停滞的水层,我们假设孔内有一个防滑表面,距孔壁几埃。为了用数值方法求解该系统,质子和水传输的稳态解被认为是围绕平衡解的扰动。我们的结果表明,相对介电常数的径向变化对孔隙电导率的影响最大,与恒定介电常数相比,降低了约50。另一方面,当考虑在这些孔内的有效水阻力时,粘度起主要作用。我们得出的结论是,只要适当指定防滑表面的位置并考虑相对介电常数的径向变化,就可以在纳米级模型中应用包括恒定粘度在内的连续方法。

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