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Energies, Vol. 19, Pages 645: Removal Dynamics of Water Droplets in the Orientated Gas Flow Channel of Proton Exchange Membrane Fuel Cells

Energies, Vol. 19, Pages 645: Removal Dynamics of Water Droplets in the Orientated Gas Flow Channel of Proton Exchange Membrane Fuel Cells

Energies doi: 10.3390/en19030645

Authors:
Dan Wang
Song Yang
Ping Sun
Xiqing Cheng
Huili Dou
Wei Dong
Zezhou Guo
Xia Sheng

Understanding the dynamic characteristics of droplets in the orientated flow channels of Proton Exchange Membrane Fuel Cells (PEMFCs) is crucial for their effective heat and water management and bipolar plate design. Therefore, the transient transport dynamics of liquid water within orientated gas flow channels (OGFCs) of PEMFCs are investigated, and a two-phase model based on the volume of fluid (VOF) method is established in the current study. Moreover, the impacts of the size of droplets and the geometrical parameters of baffles on the removal dynamics of liquid water are examined. The results show that baffles effectively promote droplet breakup and accelerate their detachment from the Gas Diffusion Layer (GDL) surface by increasing flow instability and local shear forces. The morphology of water is altered by the high velocity of gaseous flow, which can break up into several smaller droplets and distribute them on the surface of GDL by the gas flow. The shape of the liquid water film changes from a regular cuboid to a big droplet due to the surface tension of the liquid water droplets and the hydrophobicity of the GDL surfaces. Increasing the baffle height can reduce the time needed for the removal of droplets. With the increase in L1* from 0.25 to 0.75, the drainage time decreases slightly; however, for L1* increasing from 0.75 to 1.25, the drainage time remains almost the same. The impacts of different leeward lengths, L2*, on the water coverage ratio and pressure drop are minor.

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