4.7 Article

Optimization of electrochemical hydrogen compression through computational modeling

期刊

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
卷 47, 期 78, 页码 33195-33208

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2022.07.256

关键词

Hydrogen; Electrochemical compressor; Electrolyzer; Fuel cell; Back diffusion; Optimization

资金

  1. Higher Education Commission, Pakistan
  2. University of Delaware
  3. Rapid Advancement in Process Intensification Deployment (RAPID) Manufacturing Institute

向作者/读者索取更多资源

One of the main challenges in developing the hydrogen infrastructure is the distribution and storage of hydrogen. Electrochemical compression (ECC) is a promising technology that can overcome some of the disadvantages of conventional mechanical compressors. This study presents a comprehensive 3D ECC model and investigates the effect of key parameters on ECC performance, considering the phenomenon of back diffusion. The results highlight the importance of membrane thickness, operating temperature, and voltage in optimizing ECC operation.
One of the main challenges in developing the hydrogen infrastructure is the distribution and storage of hydrogen. A common method to store hydrogen is as a compressed gas. Electrochemical compression (ECC) is a promising technology that can overcome some of the disadvantages of conventional mechanical compressors. ECC employs an externally powered electrochemical cell containing a polymer electrolyte membrane to compress the gas. This work presents a comprehensive 3D ECC model developed for a single cell using COMSOL Multiphysics 5.6 that incorporates all relevant physical and electrochemical processes, and examines the effect of key parameters on ECC performance. It also considers the important phenomenon of back diffusion resulting from the high-pressure differential between the cathode and anode during compression. Results from the current simulations were validated against experimental results obtained previously in our lab. Simulations were first conducted for the unpressurized cathode to understand the effect of membrane thickness, relative humidity of the anode hydrogen supply, temperature, and gas diffusion layer thickness on ECC performance. Next, simulations were conducted for the pressurized cathode, with and without considering back diffusion. In the absence of back diffusion, the pressure ratio reaches the value predicted by the Nernst equation. However, the presence of back diffusion greatly reduces the pressure ratio as was also observed in experiments. The study reveals that three parameters in particular viz. Membrane thickness, operating temperature, and voltage must be carefully selected to optimize ECC operation. These results also suggest that ECC is a viable alternative to conventional technologies for hydrogen compression. This work also provides a foundation for the modeling and analysis of full-scale ECC systems. (c) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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