首页> 外文会议>4th International Conference on Fuel Cell Science, Engineering, and Technology 2006 pt.A >Flow-Channel Shape Design of Stamped Bipolar Plate for PEM Fuel Cell by Micro-Forming Simulation
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Flow-Channel Shape Design of Stamped Bipolar Plate for PEM Fuel Cell by Micro-Forming Simulation

机译:基于微成型仿真的PEM燃料电池冲压双极板流道形状设计

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摘要

PEM fuel cells are promising candidate as most environmentally friendly power source for transport and stationary cogeneration applications due to its high efficiency, high power density, fast startup and system robustness. But the PEM fuel cell is still too expensive for widespread commercialization. Bipolar plate is one of the most important and costliest components of PEM fuel cells and accounts to more than 80% of the weight and 30% of the total cost in a fuel cell stack. To reduce the cost and weight of fuel cell stacks and at the same time meeting several technical requirements for mass production, a prototype of low-cost stamped bipolar plates made of stainless steel 316 sheets has been introduced in this paper. Base on micro sheet forming process simulation experiments, the influence of some key dimensions of the flow channel to the formability of the stamped polar plate is also detailedly studied. Micro-forming simulation results show that relative punch radius r/t(punch radius r, sheet thickness t) and the ration of the width of coolant channel to channel depth w/h(width of coolant channel w, channel depth h) are import factors that decide the final formability of the whole polar plate. Large r/t is recommended for compact flow channel design and larger w/t is recommended for safer forming process.
机译:PEM燃料电池具有高效率,高功率密度,快速启动和系统坚固性,因此有望成为运输和固定式热电联产应用中最环保的电源。但是PEM燃料电池对于广泛的商业化来说仍然太昂贵了。双极板是PEM燃料电池最重要和最昂贵的组件之一,占燃料电池堆重量的80%以上和总成本的30%。为了降低燃料电池堆的成本和重量,同时满足批量生产的若干技术要求,本文介绍了一种由316不锈钢薄板制成的低成本冲压双极板的原型。在微片成形工艺模拟实验的基础上,还详细研究了流道某些关键尺寸对冲压极板成形性的影响。微成形仿真结果表明,导入了相对冲头半径r / t(冲头半径r,板厚t)和冷却剂通道宽度与通道深度w / h(冷却剂通道宽度w,通道深度h)的比值决定整个极板最终成型性的因素。建议使用大的r / t以实现紧凑的流道设计,建议使用大的w / t以确保更安全的成型过程。

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