AUTHOR=Eichner Benedikt J. , Amiri Mahshid N. , Burheim Odne S. , Lamb Jacob J. TITLE=2D simulation of temperature distribution within large-scale PEM electrolysis stack based on thermal conductivity measurements JOURNAL=Frontiers in Chemical Engineering VOLUME=6 YEAR=2024 URL=https://www.frontiersin.org/journals/chemical-engineering/articles/10.3389/fceng.2024.1384772 DOI=10.3389/fceng.2024.1384772 ISSN=2673-2718 ABSTRACT=
Polymer electrolyte membrane electrolyser cells (PEMEC) are recognized as highly suitable for large-scale green hydrogen production from variable renewable sources. To enhance production rates in PEMECs, current densities have gradually increased, resulting in elevated heat generation within the electrolysis cells. Consequently, the consideration of thermal gradients within individual cells within the stacks becomes increasingly crucial. This study presents a 2D thermal numerical steady-state model of an industrial-sized PEMEC stack, predicting thermal gradients within the cells in both stacking direction and along the channels of the flow fields. Through-plane thermal conductivities were measured