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整体方法研究燃料电池中 Nafion 膜的化学降解:建模与预测。

Holistic approach to chemical degradation of Nafion membranes in fuel cells: modelling and predictions.

机构信息

Institute of Physical and Theoretical Chemistry, Graz University of Technology, Stremayrgasse 9, 8010 Graz, Austria.

出版信息

Phys Chem Chem Phys. 2020 Mar 14;22(10):5647-5666. doi: 10.1039/c9cp04986j. Epub 2020 Feb 26.

Abstract

The state of health of polyfluorinated sulfonic-acid ionomer membranes (e.g. Nafion®) in low-temperature proton exchange membrane fuel cells (LT-PEMFCs) is negatively influenced by degradation phenomena occurring during their operation. As a consequence, the performance and durability of the membrane are decreased. In this article, we focus on simulating and predicting chemical membrane degradation phenomena using a holistic zero-dimensional kinetic framework. The knowledge of chemical degradation mechanisms is widely spread. We have collected and evaluated an extensive set of chemical mechanisms to achieve a holistic approach. This yields a set of 23 coupled chemical equations, which provide the whole cause and effect chain of chemical degradation in LT-PEMFCs (based on the Fenton reaction between Fe and HOvia the attack of hydroxyl radicals on the membrane, loss of ionomer moieties and emission of fluoride). Our kinetic framework allows the reproduction of experimentally accessible data such as fluoride emission rates and concentrations of ionomer moieties (from both in situ and ex situ tests). We present an approach, which allows estimations of the membrane lifetime based on fluoride emission rates. In addition, we outline the demetallation of Fe-N-C catalysts as a source of additional harmful iron species, which accelerate chemical membrane degradation. To demonstrate the expandability and versatility of the kinetic framework, a set of five chemical equations describing the radical scavenging properties of cerium agents is coupled to the main framework and its influence on membrane degradation is analysed. An automated solving routine for the system of coupled chemical equations on the basis of the chemical kinetic simulation tool COPASI has been developed and is freely accessible online ().

摘要

在低温质子交换膜燃料电池 (LT-PEMFC) 中,全氟磺酸离子交换膜(例如 Nafion®)的健康状况受到其运行过程中发生的降解现象的负面影响。因此,膜的性能和耐久性会降低。在本文中,我们专注于使用整体零维动力学框架模拟和预测化学膜降解现象。化学降解机制的知识已经广泛传播。我们收集并评估了广泛的化学机制,以实现整体方法。这产生了一组 23 个耦合的化学方程式,它们提供了 LT-PEMFC 中化学降解的整个因果链(基于 Fe 和 HO 之间的 Fenton 反应,通过羟基自由基对膜的攻击,离聚物部分的损失和氟化物的释放)。我们的动力学框架允许重现实验可访问的数据,例如氟化物发射率和离聚物部分的浓度(来自原位和异位测试)。我们提出了一种方法,该方法可以根据氟化物发射率估计膜的寿命。此外,我们概述了 Fe-N-C 催化剂的脱金属作为加速化学膜降解的额外有害铁物种的来源。为了展示动力学框架的可扩展性和通用性,一组描述铈试剂的自由基清除特性的五个化学方程式被耦合到主要框架中,并分析了其对膜降解的影响。已经开发并在线免费提供了基于化学动力学模拟工具 COPASI 的耦合化学方程式系统的自动求解例程 ()。

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