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Liquid water saturation and oxygen transport resistance in polymer electrolyte membrane fuel cell gas diffusion layers

机译:聚合物电解质膜燃料电池气体扩散层中的液体水饱和度和氧传输性

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摘要

Liquid water accumulation in the gas diffusion layers (GDLs) of polymer electrolyte membrane (PEM) fuel cells is governed by a complex interplay of factors, the full scope of which is not yet fully established in literature. This study presents the combined effects of relative humidity (RH) and current density on liquid water accumulation and oxygen mass transport resistance in the cathode GDLs of a PEM fuel cell. Through-plane liquid water saturation distributions were measured in situ using synchrotron X-ray radiography while simultaneously performing limiting current-based characterizations of oxygen transport resistance. At low current densities ( 0.5 A.cm(-2)), lower cathode RH levels resulted in the largest oxygen transport resistances due to reductions in ionomer hydration in the catalyst layer. In the intermediate current density range (1.5-2.1 A.cm(-2)), high RH levels resulted in the largest oxygen transport resistances due to the observed significant sensitivity of liquid water accumulation to cathode RH. At high current densities ( 3.0 A.cm(-2)), cathode GDL liquid saturation levels were high regardless of cathode inlet RH, and the oxygen transport resistance was therefore less sensitive to RH. Furthermore, it was established that liquid water tends to preferentially accumulate in regions of higher local porosity within the GDL, identified by combining measured liquid water saturations with micro-computed tomography (mu CT) characterizations of the through-plane porosity profile. Finally, the strong relationship between GDL oxygen transport resistance and liquid water-free (effective) pore space of the GDL was examined in order to consider the feasibility of predicting oxygen transport resistance based on overall liquid saturation. (c) 2018 Elsevier Ltd. All rights reserved.
机译:聚合物电解质膜(PEM)燃料电池的气体扩散层(GDL)中的液体水积累受到因素的复杂相互作用的管辖,其全部范围在文献中尚未完全建立。该研究介绍了相对湿度(RH)和电流密度对PEM燃料电池阴极GDL中液体水积聚和氧气传输性的综合影响。通过同步地测量通过平面液体水饱和度分布,同时执行限制基于电流的氧传输性的特性。在低电流密度(<0.5A.CM(-2)),下阴极RH水平导致由于催化剂层中的离聚物水合降低而导致最大的氧气传输。在中间电流密度范围内(1.5-2.1A.CM(-2)),由于观察到对阴极RH的显着敏感性,高RH水平导致最大的氧气传输电阻。在高电流密度(& 3.0 a.cm(-2))中,无论阴极入口Rh如何,阴极gdl液体饱和水平高,因此氧传输性对Rh敏感。此外,建立液体水倾向于优先在GD1内的较高局部孔隙率的区域中积聚,通过将测量的液体水饱和与通孔孔隙率分布的微计算断层扫描(MU CT)表征组合来鉴定。最后,研究了GDL氧传输性与GD1的无液体无水(有效)孔隙空间之间的强关系,以考虑基于总液体饱和度预测氧传输抗性的可行性。 (c)2018年elestvier有限公司保留所有权利。

著录项

  • 来源
    《Electrochimica Acta》 |2018年第2018期|共16页
  • 作者单位

    Univ Toronto Dept Mech &

    Ind Engn Thermofluids Energy &

    Adv Mat TEAM Lab Inst Sustainable Engn Fac Appl Sci &

    Engn Toronto ON Canada;

    Univ Toronto Dept Mech &

    Ind Engn Thermofluids Energy &

    Adv Mat TEAM Lab Inst Sustainable Engn Fac Appl Sci &

    Engn Toronto ON Canada;

    Univ Toronto Dept Mech &

    Ind Engn Thermofluids Energy &

    Adv Mat TEAM Lab Inst Sustainable Engn Fac Appl Sci &

    Engn Toronto ON Canada;

    Univ Toronto Dept Mech &

    Ind Engn Thermofluids Energy &

    Adv Mat TEAM Lab Inst Sustainable Engn Fac Appl Sci &

    Engn Toronto ON Canada;

    Univ Toronto Dept Mech &

    Ind Engn Thermofluids Energy &

    Adv Mat TEAM Lab Inst Sustainable Engn Fac Appl Sci &

    Engn Toronto ON Canada;

    Univ Toronto Dept Mech &

    Ind Engn Thermofluids Energy &

    Adv Mat TEAM Lab Inst Sustainable Engn Fac Appl Sci &

    Engn Toronto ON Canada;

    Univ Toronto Dept Mech &

    Ind Engn Thermofluids Energy &

    Adv Mat TEAM Lab Inst Sustainable Engn Fac Appl Sci &

    Engn Toronto ON Canada;

    Univ Toronto Dept Mech &

    Ind Engn Thermofluids Energy &

    Adv Mat TEAM Lab Inst Sustainable Engn Fac Appl Sci &

    Engn Toronto ON Canada;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 电化学工业;物理化学(理论化学)、化学物理学;
  • 关键词

    Synchrotron X-ray radiography; Relative humidity; Limiting current density; Condensation; Spatial liquid water distribution;

    机译:同步X射线射线照相;相对湿度;限制电流密度;冷凝;空间液体水分布;

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