Design and simulation of novel flow field plate geometry for proton exchange membrane fuel cells
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  • 作者:Hanxia Ruan ; Chaoqun Wu ; Shuliang Liu ; Tao Chen
  • 刊名:Heat and Mass Transfer
  • 出版年:2016
  • 出版时间:October 2016
  • 年:2016
  • 卷:52
  • 期:10
  • 页码:2167-2176
  • 全文大小:2,830 KB
  • 刊物类别:Engineering
  • 刊物主题:Engineering Thermodynamics and Transport Phenomena
    Industrial Chemistry and Chemical Engineering
    Thermodynamics
    Physics and Applied Physics in Engineering
    Theoretical and Applied Mechanics
    Engineering Fluid Dynamics
  • 出版者:Springer Berlin / Heidelberg
  • ISSN:1432-1181
  • 卷排序:52
文摘
Bipolar plate is one of the many important components of proton exchange membrane fuel cell (PEMFC) stacks as it supplies fuel and oxidant to the membrane-electrode assembly (MEA), removes water, collects produced current and provides mechanical support for the single cells in the stack. The flow field design of a bipolar plate greatly affects the performance of a PEMFC. It must uniformly distribute the reactant gases over the MEA and prevent product water flooding. This paper aims at improving the fuel cell performance by optimizing flow field designs and flow channel configurations. To achieve this, a novel biomimetic flow channel for flow field designs is proposed based on Murray’s Law. Computational fluid dynamics based simulations were performed to compare three different designs (parallel, serpentine and biomimetic channel, respectively) in terms of current density distribution, power density distribution, pressure distribution, temperature distribution, and hydrogen mass fraction distribution. It was found that flow field designs with biomimetic flow channel perform better than that with convectional flow channel under the same operating conditions.
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