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Modular Polymer Electrolyte Membrane Fuel Cell and Electrolyser Stack Design with Hydraulic Compression

机译:液压压缩的模块化聚合物电解质膜燃料电池和电解质堆栈设计

摘要

An energy economy with high share of renewable but volatile energy sources is dependent on storage strategies in order to ensure sufficient energy delivery in periods of e.g. low wind and/or low solar radiation. Hydrogen as environmental friendly energy carrier is thought to be an appropriate solution for large scale energy storage. In 2011 the NOW (national organisation for hydrogen in Germany) calculated the demand for hydrogen energy systems as positive (0.8 GW to 5.25 GW) and negative supply for varying power demand (0.68 to 4.3 GW) for the German energy economy in 2025. Due to its dynamic behaviour on load changes polymer electrolyte membrane fuel cells (PEMFC) as well as water electrolyser systems (PEMEL) can play a significant role for large scale hydrogen based storage systems. In this work a novel design concept for modular fuel cell and electrolyser stacks is presented with single cells in pockets surrounded by a hydraulic medium. This hydraulic medium introduces necessary compression forces on the membrane electrode assembly (MEA) of each cell within a stack. Furthermore, ideal stack cooling is achieved by this medium. Due to its modularity and scalability the modular stack design with hydraulic compression meets the requirements for large PEMFC as well as PEMEL units. Small scale prototypes presented in this work illustrate the potential of this design concept.
机译:具有高份额的可再生但挥发性能源的能源经济依赖于存储策略,以确保在例如低风和/或低太阳辐射。氢作为环境友好的能量载体被认为是大规模储能的合适解决方案。 2011年,NOW(德国国家氢能组织)计算出2025年德国能源经济对氢能系统的需求为正(0.8 GW至5.25 GW),负供应为变化的电力需求(0.68至4.3 GW)。聚合物电解质膜燃料电池(PEMFC)以及水电解系统(PEMEL)在负载变化方面的动态性能对于大规模的氢存储系统起着重要作用。在这项工作中,提出了一种用于模块化燃料电池和电解槽堆的新颖设计理念,其中单个槽位于液压介质包围的口袋中。该液压介质将必要的压缩力施加到堆中每个电池的膜电极组件(MEA)上。此外,通过这种介质可以实现理想的烟囱冷却。由于其模块化和可扩展性,具有液压压缩功能的模块化堆叠设计可满足大型PEMFC和PEMEL单元的要求。这项工作中提出的小规模原型说明了这种设计概念的潜力。

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