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Three dimensional numerical simulation of gas-liquid two-phase flow patterns in a polymer-electrolyte membrane fuel cells gas flow channel

机译:聚合物电解质膜燃料电池气体流道中气液两相流型态的三维数值模拟

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摘要

Water management in polymer-electrolyte membrane fuel cells (PEMFCs) has a major impact on fuel cell performance and durability. To investigate the two-phase flow patterns in PEMFC gas flow channels, the volume of fluid (VOF) method was employed to simulate the air-water flow in a 3D cuboid channel with a 1.0 mm× 1.0 mm square cross section and a 100 mm in length. The microstructure of gas diffusion layers (GDLs) was simplified by a number of representative opening pores on the 2D GDL surface. Water was injected from those pores to simulate water generation by the electrochemical reaction at the cathode side. Operating conditions and material properties were selected according to realistic fuel cell operating conditions. The water injection rate was also amplified 10 times, 100 times and 1000 times to study the flow pattern formation and transition in the channel. Simulation results show that, as the flow develops, the flow pattern evolves from corner droplet flow to top wall film flow, then annular flow, and finally slug flow. The total pressure drop increases exponentially with the increase in water volume fraction, which suggests that water accumulation should be avoided to reduce parasitic energy loss. The effect of material wettability was also studied by changing the contact angle of the GDL surface and channel walls, separately. It is shown that using a more hydrophobic GDL surface is helpful to expel water from the GDL surface, but increases the pressure drop. Using a more hydrophilic channel wall reduces the pressure drop, but increases the water residence time and water coverage of the GDL surface.
机译:聚合物电解质膜燃料电池(PEMFC)中的水管理对燃料电池的性能和耐用性有重大影响。为了研究PEMFC气体流道中的两相流模式,采用了流体体积(VOF)方法来模拟3D长方体通道中的空气-水流,该3D长方体通道的横截面为1.0 mm×1.0 mm在长度上。气体扩散层(GDL)的微观结构通过2D GDL表面上的许多代表性开口孔得以简化。从这些孔中注入水,以模拟在阴极侧通过电化学反应产生的水。根据实际的燃料电池运行条件选择运行条件和材料特性。注水速率也分别放大了10倍,100倍和1000倍,以研究流型在通道中的形成和过渡。仿真结果表明,随着流动的发展,流动模式从角滴流演变成顶壁膜流,然后是环形流,最后是团状流。总压降随水量分数的增加呈指数增加,这表明应避免积水以减少寄生能量损失。还通过分别改变GDL表面和通道壁的接触角来研究材料润湿性的影响。结果表明,使用疏水性更高的GDL表面有助于将水从GDL表面排出,但会增加压降。使用亲水性更高的通道壁可减少压降,但会增加水停留时间和GDL表面的水覆盖率。

著录项

  • 来源
    《Journal of power sources》 |2011年第15期|p.6284-6292|共9页
  • 作者

    Y. Ding; H.T. Bi; D.P. Wilkinson;

  • 作者单位

    Department of Chemical and Biological Engineering, University of British Columbia, 2360 East Mall Vancouver, BC, V6 T1Z3, Canada,Clean Energy Research Centre, 2360 East Mall Vancouver, BC, V6 T1Z3 Canada;

    Department of Chemical and Biological Engineering, University of British Columbia, 2360 East Mall Vancouver, BC, V6 T1Z3, Canada,Clean Energy Research Centre, 2360 East Mall Vancouver, BC, V6 T1Z3 Canada;

    Department of Chemical and Biological Engineering, University of British Columbia, 2360 East Mall Vancouver, BC, V6 T1Z3, Canada,Clean Energy Research Centre, 2360 East Mall Vancouver, BC, V6 T1Z3 Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    pemfc gas flow channel; two-phase flow pattern; gdl microstructure; vof method;

    机译:pemfc气体流道;两相流型gdl微观结构;验证方法;
  • 入库时间 2022-08-18 00:24:29

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