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Modeling of Electrochemistry and Heat/Mass Transfer in a Tubular Solid Oxide Steam Electrolyzer for Hydrogen Production

机译:用于制氢的管状固体氧化物蒸汽电解槽中电化学和热/质传递模型

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摘要

A finite-volume based mathematical model has been developed for modeling hydrogen production by a tubular cell of solid oxide steam electrolyzer(SOSE),taking into account the electrochemical reactions and heat/mass transfer effects.The model is composed of three systems of nonlinear equations that govern the electric current density,energy balance in the solid SOSE cell,and energy balance in the flow of steam and hydrogen.The simulated hydrogen production rate proportional to the applied potential agreed well with the experimental measurements published in the literature.The intermediate modeling results indicated that the activation effect dominate the overall cell overpotential due to low exchange current density through the SOSE cell electrodes.Thus,higher electrode activity was identified as an important factor for enhancing cell performance.Parametric modeling analyses were conducted to gain better understanding of the SOSE characteristics.It was found that low-temperature gas intake would cause a high temperature gradient in the tubular cell material at the inlet,possibly leading to a thermal expansion problem.The risk could be reduced by increasing the gas inlet temperature.It was also found that energy-efficient SOSE hydrogen production can be achieved by reducing the hydrogen content in the steam intake and regulating the steam intake flow rate to an optimum that minimizes the overall electrical and thermal requirements.More parametric modeling results are discussed in this paper.The tubular SOSE cell model developed in this study can easily be expanded to accomplish tubular SOSE stack analysis for comprehensive system design optimization.
机译:考虑到电化学反应和传热/传质效应,建立了一个基于有限体积的数学模型来模拟固体氧化物蒸汽电解器(SOSE)的管状电解池产氢。该模型由三个非线性方程组组成这些因素决定着电流密度,固体SOSE电池中的能量平衡以及蒸汽和氢气流中的能量平衡。模拟的氢气产生速率与施加的电势成正比,与文献中发表的实验测量结果非常吻合。结果表明,由于通过SOSE细胞电极的交换电流密度低,激活效应主导了整个细胞的超电势。因此,较高的电极活性被认为是增强细胞性能的重要因素。进行了参数建模分析,以更好地了解细胞SOSE特性。发现低温气体会在入口处的管状电池材料中引起高温梯度,可能导致热膨胀问题。可以通过提高气体入口温度来降低风险。还发现可以实现节能的SOSE制氢通过减少蒸汽入口中的氢含量并调节蒸汽入口流速至使总的电气和热需求最小化的最佳水平。本文讨论了更多的参数化建模结果。扩展以完成管状SOSE堆栈分析,以进行全面的系统设计优化。

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