Numerical analysis of heat transfer and gas flow in PEM fuel cell ducts by a generalized extended Darcy model

Jinliang Yuan, Bengt Sundén

    Research output: Contribution to journalArticlepeer-review

    Abstract

    In this work, gas flow and heat transfer have been numerically investigated and analyzed for both cathode/anode ducts of proton exchange membrane (PEM) fuel cells. The simulation is conducted by solving a set of conservation equations for the whole domain consisting of a porous medium, solid structure, and flow duct. A generalized extended Darcy model is employed to investigate the flow inside the porous layer. This model accounts for the boundary-layer development, shear stress, and microscopic inertial force as well. Effects of inertial coefficient, together with permeability, effective thermal conductivity, and thickness of the porous layer on gas flow and heat transfer are investigated.
    Original languageEnglish
    Pages (from-to)47-63
    JournalInternational Journal of Green Energy
    Volume1
    Issue number1
    DOIs
    Publication statusPublished - 2004

    Subject classification (UKÄ)

    • Energy Engineering

    Free keywords

    • gas flow
    • generalized extended Darcy model
    • numerical analysis
    • fuel cell
    • transfer
    • heat

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