Abstract

ABSTRACT In this study, we proposed a novel method that integrates the detailed channel two-phase flow into the 3D (three-dimensional) multi-phase full-cell model of PEMEC (proton exchange membrane electrolyzer cell), which makes it able to predict the effect of oxygen in anode channel on the transport phenomena in the porous electrode and cell performance. It is found that if neglecting the oxygen in anode channel, the simulation results of parallel and serpentine flow fields using 3D full-cell model will be almost the same, which is contrary to the experimental results. But if we add the oxygen volume fraction distribution at the interface of channel and L/GDL (liquid/gas diffusion layer) into the 3D full-cell model as the boundary condition of oxygen equation solved in the porous electrodes, the simulated polarization curves will fit the experimental data reasonably, indicating that the oxygen in anode channel cannot be neglected. In addition, the channel oxygen plays a vital role in the distributions of oxygen, current density, and temperature in the porous electrodes mainly because it largely hinders the oxygen removal process. Then, we extended it to the integration of modeling the detailed channel two-phase flow by VOF (volume of fluid) method into the 3D multi-phase model of PEMEC. Based on this integration method, the influence of oxygen in anode channel on the transport phenomena and cell performance can be investigated in detail.

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