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Two-phase flow behaviour and performance of polymer electrolyte membrane electrolysers: Electrochemical and optical characterisation

机译:聚合物电解质膜电解槽的两相流行为和性能:电化学和光学表征

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摘要

Understanding gas evolution and two-phase flow behaviour are critical for performance optimization of polymer electrolyte membrane water electrolysers (PEMWEs), particularly at high current densities. This study investigates the gas-bubble dynamics and two-phase flow behaviour in the anode flow-field of a PEMWE under different operating conditions using high-speed optical imaging and relates the results to the electrochemical performance. Two types of anode flow-field designs were investigated, the single serpentine flow-field (SSFF) and parallel flow-field (PFF). The results show that the PFF design yielded a higher cell performance than the SSFF design at identical operating conditions. Optical visualization shows a strong relationship between the flow path length and the length of gas slugs produced, which in turn influences the flow regime of operation. Longer flow path length in the SSFF results in annular flow regime at a high current density which degrades cell performance. The annular flow regime was absent in the PFF design. It was found the effect of flow rate on performance depends strongly on operating temperature in both flow patterns. Results of this study indicate that long channel length promotes gas accumulation and channel-blocking which degrades performance in PEMWEs.
机译:了解气体逸出和两相流动行为对于优化聚合物电解质膜水电解器(PEMWE)的性能至关重要,尤其是在高电流密度下。这项研究使用高速光学成像技术研究了在不同工作条件下PEMWE阳极流场中的气泡动力学和两相流动行为,并将结果与​​电化学性能相关联。研究了两种类型的阳极流场设计,单蛇形流场(SSFF)和平行流场(PFF)。结果表明,在相同的工作条件下,PFF设计比SSFF设计具有更高的电池性能。光学可视化显示出流路长度与产生的气体块的长度之间有很强的关系,这反过来又会影响操作的流态。 SSFF中较长的流路长度会导致高电流密度下的环形流态,从而降低电池性能。 PFF设计中不存在环形流态。发现流量对性能的影响在很大程度上取决于两种流量模式中的工作温度。这项研究的结果表明,较长的通道长度会促进气体聚集和通道阻塞,从而降低PEMWEs的性能。

著录项

  • 来源
    《International journal of hydrogen energy》 |2018年第33期|15659-15672|共14页
  • 作者单位

    Electrochemical Innovation Lab, Department of Chemical Engineering, University College London;

    Electrochemical Innovation Lab, Department of Chemical Engineering, University College London,Centre for Nature Inspired Engineering, Department of Chemical Engineering, University College London;

    Electrochemical Innovation Lab, Department of Chemical Engineering, University College London;

    Electrochemical Innovation Lab, Department of Chemical Engineering, University College London;

    Electrochemical Innovation Lab, Department of Chemical Engineering, University College London;

    Electrochemical Innovation Lab, Department of Chemical Engineering, University College London;

  • 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

    Polymer electrolyte water electrolyser; Flow-field; Gas-bubble dynamics; Two-phase flow; High-speed optical visualization;

    机译:高分子电解质水电解槽流场气泡动力学两相流高速光学可视化;
  • 入库时间 2022-08-18 00:18:33

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