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Experimental and Numerical Simulation Study of Oxygen Transport in Proton Exchange Membrane Fuel Cells at Intermediate Temperatures (80 °C-120 °C). | LitMetric

AI Article Synopsis

  • * The study found that as the temperature rises, local oxygen transport resistance increases by 34% due to the Ostwald ripening effect, while total transport resistance decreases from 27.8% to 37.5% because of enhanced gas diffusion and reduced liquid water in the membrane.
  • * A three-dimensional multiphysics model illustrates that increasing back pressure at intermediate temperatures can effectively counteract decreases in oxygen partial pressure, optimizing fuel cell performance.

Article Abstract

Investigating the oxygen transport law within the Membrane Electrode Assembly at intermediate temperatures (80-120 °C) is crucial for enhancing fuel cell efficiency. This study analyzed the resistance to oxygen transport within the Membrane Electrode Assembly at intermediate temperatures using limiting current density and electrochemical impedance spectroscopy. The study findings reveal that, as temperature progressively increases, the Ostwald ripening effect leads to a 34% rise in the local oxygen transport resistance (R) in relation to the pressure-independent resistance (R) within the cathode catalytic layer. Concurrently, the total transport resistance (R) decreases from 27.8% to 37.5% due to an increase in the gas diffusion coefficient and molecular reactivity; additionally, there is a decrease in the amount of liquid water inside the membrane electrode. A three-dimensional multiphysics field steady-state model was also established. The model demonstrates that the decrease in oxygen partial pressure can be mitigated effectively by increasing the back pressure at intermediate temperatures to ensure the cell's performance.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11052493PMC
http://dx.doi.org/10.3390/membranes14040072DOI Listing

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