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Two-stage forming approach for manufacturing ferritic stainless steel bipolar plates in PEM fuel cell: Experiments and numerical simulations
Authors:Hyuk Jong Bong  Jinwoo Lee  Jong-Hee Kim  Frédéric Barlat  Myoung-Gyu Lee
Affiliation:1. Graduate Institute of Ferrous Technology, POSTECH, Pohang, Gyeongbuk, 37673, South Korea;2. Materials Deformation Department, Korean Institute of Materials Science (KIMS), Changwon, Gyeongnam, 51508, South Korea;3. Stainless Steel Products Research Group, POSCO Technical Research Laboratories, Pohang, Gyeongbuk, 37859, South Korea;4. Department of Materials Science and Engineering, Korea University, Seoul, 02841, South Korea
Abstract:Multi-stage micro-channel forming by stamping, as a method for cost effective and efficient for mass production, was performed for ultra-thin ferritic stainless steel sheets with thicknesses of 0.1 and 0.075 mm, as a good substitute for traditional graphite bipolar plates of proton exchange membrane fuel cell. Attention was directed to enhance the final forming depth and minimize localized thinning, extremely important aspects of the micro-channel on bipolar plate, by the proposed forming process. A forming depth at the first forming stage was chosen as a process variable, and its effect on the formability of the micro-channel at the second forming stage was experimentally investigated. Finite element simulations for the two-stage forming process were conducted to optimize the punch radius and forming depth at the first stage for improving the formability. The comparative study between the simulations and the experimental results could validate improvements in the formability by the proposed approach. In particular, this study could support the existence of an optimum forming depth at the first forming stage. Based on the simulation results, a mathematical model was established to identify the dominant factor needed for formability improvement and to propose a methodology for the process optimization of the multi-stage forming.
Keywords:PEMFC  Ferritic stainless steel  Micro-channel  Multi-stage forming  Finite element simulation
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