Two-Phase Flow Through the PTL of PEM Water Electrolyzer: MRI Experiments and Numerical Modeling Using Phase-Field Theory

Bilal Amoury, Tien Dung Le, Jérôme Dillet, Sébastien Leclerc, Gael Maranzana, Sophie Didierjean
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Abstract

Proton Exchange Membrane (PEM) electrolysis is a promising technology for large industrial-scale hydrogen production, but it faces limitations due to mass transport and electrical transfer issues in the anode Porous Transport Layer (PTL). The optimal porosity and pore size of the PTL contributes to efficient water, gas, and electron transport. In this work, the water/gas counter-current flow through the PTL was studied by both experiment and modeling. Magnetic Resonance Imaging (MRI) is utilized to quantify water content within the porous layer during the two-phase flow for different gas and water inlet flow rates. The dependence of the saturation profile and bubble formation on the gas/water flow rates, water channel's orientation, flow direction is studied. To better understand the two-phase flow characteristics in the PTL, the phase-field model based on the Cahn-Hilliard theory for describing a diffuse interface is used to model the water and gas transport over 2D porous layer.
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PEM水电解槽PTL内的两相流:MRI实验与相场理论数值模拟
质子交换膜(PEM)电解是一种很有前途的大规模工业制氢技术,但由于阳极多孔传输层(PTL)的质量传输和电传递问题,它面临着局限性。PTL的最佳孔隙率和孔径有助于有效的水、气体和电子传输。本文采用实验和模型相结合的方法,研究了水/气逆流流过PTL的过程。采用核磁共振成像(MRI)技术对不同气、水进口流速下两相流过程中多孔层内的含水量进行定量分析。研究了饱和剖面和气泡形成与气/水流速、水道方向、水流方向的关系。为了更好地理解PTL中的两相流特性,采用基于Cahn-Hilliard理论的扩散界面相场模型对二维多孔层上的水和气体运移进行了模拟。
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