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Investigation of hot pressing parameters for manufacture of catalyst-coated membrane electrode (CCME) for polymer electrolyte membrane fuel cells by response surface method

机译:响应面法研究高分子电解质膜燃料电池用催化剂膜电极(CCME)的热压参数

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This paper presents the results of investigations to develop an optimized in-house catalyst-coated membrane electrode (CCME) assembling technique which is the fast and most cost-effective method for quick selection of electrode materials and components. Due to the absence of hydrogen, this method is safer than single cell. The hot-pressing conditions of the CCME of a proton exchange membrane fuel cell in this preparation technique were investigated by using a central composite design. The influence of CCME fabrication parameters like hot pressing parameters on performance of hydrogen fuel cells was studied by cathode half cell measurements. Compression pressure, temperature and time duration were key parameters varied from 35 to 105 kgf/cm(2), 80 to 140 degrees C and 1 to 5 min, respectively. The CCME was prepared with a Nafion 117 membrane and the gas diffusion layer (GDL) has an active area of 0.785 cm(2) with Pt/MWCNT catalysts of 0.1 mg cm(-2) loaded at the cathode side. The design of experiment (DOE) work was performed with the response surface method using the central composite design. The results show that the proposed mathematical model in the response surface methodology (RSM) can be used adequately for prediction and optimization within the factor levels investigated. As it was predicted in present study, The combined optimum hot pressing parameters, gave the highest performance of 22.9 mW cm(-2) predicted in this study are 35 kgf/cm(2), 93 degrees C and 5 min. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文介绍了研究结果,以开发一种优化的内部催化剂涂层膜电极(CCME)组装技术,该技术是快速选择电极材料和组件的最快捷,最具成本效益的方法。由于没有氢,这种方法比单电池安全。通过中心复合设计研究了该制备技术中质子交换膜燃料电池CCME的热压条件。通过阴极半电池测量研究了CCME制造参数(如热压参数)对氢燃料电池性能的影响。压缩压力,温度和持续时间是关键参数,分别从35到105 kgf / cm(2),80到140摄氏度和1到5分钟不等。 CCME用Nafion 117膜制备,气体扩散层(GDL)的活性面积为0.785 cm(2),阴极侧装有0.1 mg cm(-2)的Pt / MWCNT催化剂。实验设计(DOE)工作是使用中央复合设计通过响应面方法进行的。结果表明,在响应面方法(RSM)中提出的数学模型可以在所研究的因子水平内充分用于预测和优化。正如本研究中所预测的那样,组合的最佳热压参数在本研究中预测的最高性能为22.9 mW cm(-2)为35 kgf / cm(2),93摄氏度和5分钟。 (C)2017 Elsevier Ltd.保留所有权利。

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