首页> 外文会议>Proceedings of the 7th international conference on fuel cell science, engineering, and technology 2009 >FUEL CELL ASAP: TWO ITERATIONS OF AN AUTOMATED STACK ASSEMBLY PROCESS AND RAMIFICATIONS FOR FUEL CELL DESIGN-FOR-MANUFACTURE CONSIDERATIONS
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FUEL CELL ASAP: TWO ITERATIONS OF AN AUTOMATED STACK ASSEMBLY PROCESS AND RAMIFICATIONS FOR FUEL CELL DESIGN-FOR-MANUFACTURE CONSIDERATIONS

机译:尽快进行燃料电池:针对燃料电池按制造考虑的自动叠装过程的两种选择和简化方法

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Polymer-electrode membrane (PEM) fuel cell technology, a low-emissions power source receiving much attention for its efficiency, will need to progress from low-volume production to high-volume within the course of the next decade. To successfully achieve this transition, significant research progress has already been made towards developing a fully-functional fuel cell automatic stack assembly robotic station. Lessons can be drawn from this research with regards to design-for-manufacture (DFM) and design-for-assembly (DFA) considerations of fuel cells; however, more work still remains to be done. This document outlines both iterations of the robotic fuel cell assembly stations, other work to date, DFM and DFA lessons learned, and the anticipated future progression of automatic fuel cell stack assembly stations.rnA literature search reveals numerous patents pertaining to equipment and processes for fuel cell assembly as well as a great number of patents pertaining to fuel cell stack features to aid in manufacture or assembly. However, most of this is focused upon proper compression of the membrane material, with little thought given to overall assembly and throughput. Journal articles have begun to consider real-world manufacturing considerations pertinent to production scale-up, but much remains to be done. Therefore, there is a need for more contributions to stack manufacture and assembly.rnWork already completed (by the authors and their lab) towards the manufacturing workcell specifically includes the design and construction of two individual robotic fuel cell assembly stations, including custom-built end effectors and parts feeders. The second station incorporated numerous improvements, including overlapping work envelopes, elimination of a shuttle cart, software synchronization, fewer axes, and a better end effector. Consequentially, the secondrnworkcell achieved a four-fold improvement in cycle time over the previous iteration. Future improvements will focus in part upon improving the reliability of the overall system.rnClose study of the manufacturing workcell indicated that stack component design features are key for production and scale-up of fuel cell stack manufacturing processes. Critical features are discussed in this article, as well as their ramifications for the overall stack design.rnAs the stack assembly workcell continues to improve, research will focus upon the ramifications and interplay of tolerances, stack failure modes, sealing, reliability, and the potential for component redesign specifically to optimize fuel cell manufacturing throughput.
机译:聚合物电极膜(PEM)燃料电池技术是一种因其效率而备受关注的低排放电源,它将需要在未来十年内从小批量生产发展为大批量生产。为了成功实现这一转变,在开发功能齐全的燃料电池自动堆垛装配机器人工作站方面已经取得了重大的研究进展。从这项研究中可以吸取关于燃料电池的制造设计(DFM)和组装设计(DFA)方面的经验教训;但是,还有更多工作要做。该文件概述了机器人燃料电池组装站的迭代,迄今为止的其他工作,DFM和DFA的经验教训以及自动燃料电池堆组装站的预期未来发展.rn文献搜索揭示了与燃料设备和过程有关的众多专利电池组件以及与燃料电池堆功能有关的大量专利,以帮助制造或组装。然而,大多数都集中在膜材料的适当压缩上,而很少考虑整体组装和产量。期刊文章已开始考虑与扩大生产相关的现实世界中的制造考虑因素,但仍有许多工作要做。因此,需要为电池组的制造和组装做出更多贡献。rn(作者和他们的实验室)已经完成了对制造工作单元的工作,具体包括两个单独的机器人燃料电池组装站的设计和建造,包括定制的终端效应器和零件进料器。第二个工位进行了许多改进,包括重叠的工作区域,取消了穿梭车,软件同步,更少的轴和更好的末端执行器。因此,第二个工作单元的循环时间比之前的迭代提高了四倍。未来的改进将部分集中在提高整个系统的可靠性上。对制造工作单元的仔细研究表明,堆组件设计特征对于燃料电池堆制造工艺的生产和规模扩大至关重要。本文讨论了关键功能及其对整个堆栈设计的影响。随着堆栈装配工作单元的不断改进,研究将集中在公差,堆栈故障模式,密封,可靠性和潜在功能的影响和相互影响上。重新设计组件,以优化燃料电池的生产能力。

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