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CRACK PROPAGATION RESISTANCE IN THICKNESS DIRECTION OF PROTON EXCHANGE MEMBRANE (PEM)

机译:质子交换膜(PEM)厚度方向的抗裂纹扩展性

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Mechanical reliabilities of membrane electrode assemblies (MEA) in polymer electrolyte fuel cells (PEFCs) are a major concern to fuel cell vehicles. Especially, MEAs are designed to be thinner for obtaining higher generating performance and reducing cost. Proton exchange membranes (PEM) in MEA are especially important parts. When PEFCs generate power, MEAs are in high temperature and water is generated. Hygro-thermal cyclic conditions induce the mechanical stress in MEA and cracks are formed on catalyst layers. Once cracks form on catalyst layers, cracks may propagate into PEM or on the interface between the catalyst layer and PEM. The failures of PEM induce the leak of fuel gases and result in the shortage of output power. Therefore, in order to ensure the durability of thin MEAs, it is important to know the fracture resistance of PEM. The deformation of PEM is constrained by coated catalyst layers and crack propagates into thickness direction of PEM under the constrained condition. However, there are no available data for the fracture resistance of cracks propagating into thickness direction in MEA, because of the difficulty of measurements. Therefore, in this paper, we try to measure the fracture resistance of cracks propagating into thickness direction in PEM under several environmental conditions. Elastic-plastic fracture toughness tests for PEM were carried out in temperature and humidity controlled chamber. The results showed that the fracture resistances of crack propagation into thickness direction of PEM were strongly affected by temperature and humidity conditions.
机译:聚合物电解质燃料电池(PEFC)中的膜电极组件(MEA)的机械可靠性是燃料电池汽车的主要关注点。尤其是,MEA设计得更薄,以获得更高的发电性能并降低成本。 MEA中的质子交换膜(PEM)是特别重要的部分。当PEFC发电时,MEA处于高温状态,并且会产生水。湿热循环条件在MEA中引起机械应力,并且在催化剂层上形成裂纹。一旦在催化剂层上形成裂纹,裂纹就可能传播到PEM或催化剂层与PEM之间的界面上。 PEM的故障会导致燃料气体泄漏,并导致输出功率不足。因此,为了确保薄MEA的耐用性,了解PEM的抗断裂性很重要。 PEM的变形受到涂层催化剂层的约束,并且在约束条件下,裂纹向PEM的厚度方向扩展。但是,由于测量困难,因此在MEA中传播至厚度方向的裂纹的抗断裂性尚无可用数据。因此,在本文中,我们尝试在几种环境条件下测量在PEM中沿厚度方向传播的裂纹的抗断裂强度。 PEM的弹塑性断裂韧性测试是在温度和湿度受控的室内进行的。结果表明,温度和湿度条件对裂纹扩展到PEM厚度方向的断裂抗力有很大影响。

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