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Non-Dimensional Analysis of Diffusion Characteristics in Polymer Electrolyte Membrane Fuel Cells with Mismatched Anodic and Cathodic Flow Channels

Authors
Kim, HyeokKim, GeonhwiKim, JaeyeonKim, DasolKwon, ObeenYoo, HongnyoungCha, HyeonjinChoi, HeesooPark, Taehyun
Issue Date
Dec-2021
Publisher
MDPI
Keywords
polymer electrolyte membrane fuel cell; electrochemical impedance spectroscopy; Sherwood number; Schmidt number; diffusion
Citation
ENERGIES, v.14, no.24
Journal Title
ENERGIES
Volume
14
Number
24
URI
http://scholarworks.bwise.kr/ssu/handle/2018.sw.ssu/41950
DOI
10.3390/en14248596
ISSN
1996-1073
Abstract
Polymer electrolyte membrane fuel cells were analyzed to investigate changes in the structure of the flow field and operating conditions. The cell performance, which was controlled by adjusting the width of the cathodic channel, improved as the backpressure increases. With the anodic and cathodic flow channels mismatched, the maximum power densities at 3.0 bar for a narrow cathodic channel were 1115 and 1024 mW/cm(2), and those for a wide cathodic channel were 959 and 868 mW/cm(2), respectively. The diffusion characteristics were investigated using the non-dimensional numbers Re (Reynolds), Sc (Schmidt), and Sh (Sherwood) to confirm the improvement of mass transport. The narrower the channel or the higher the operating pressure, the larger Re was and the smaller Sc and Sh became. In particular, the wider the anodic channel, the larger the value of Sh.
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