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  5. Numerical analysis of the effect of pore size toward the performance of solid oxide fuel cell
 
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Numerical analysis of the effect of pore size toward the performance of solid oxide fuel cell

Journal
Lecture Notes in Electrical Engineering
ISSN
18761100
Date Issued
2022-01-01
Author(s)
Tan Wee Choon
Universiti Malaysia Perlis
Lim Eng Aik
Universiti Malaysia Perlis
Cheng Ee Meng
Universiti Malaysia Perlis
Tan Wei Hong
Universiti Malaysia Perlis
DOI
10.1007/978-981-16-8129-5_24
Handle (URI)
https://hdl.handle.net/20.500.14170/6528
Abstract
The effect of the anode pore size is numerically investigated with the aids of artificial solid oxide fuel cell (SOFC) microstructure information. The standalone effect of the pore size is impossible to be realized by the experimental approach. Additionally, the complete real microstructure information is also limited in the open literature as it required sub-micron 3D imaging equipment. The dusty-gas model is implemented into the developed quasi-3D SOFC model for the gas diffusion in the anode. The model with real microstructure information is successfully validated. The actual anode pore radius of 0.283 μm is artificially replaced with a radius of 0.025, 0.050, 0.250, 0.500, and 2.500 μm. Decrement of area-specific reactant (ASR) for the anode concentration is found with the increment of pore radius. Also, such increment promotes a small increment of ASRs for the anode activation and the anode ohmic loss.
Subjects
  • Dusty-gas model

  • Microstructure

  • Quasi-3D SOFC model

File(s)
research repository notification.pdf (4.4 MB)
Views
2
Acquisition Date
Feb 2, 2026
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Downloads
3
Acquisition Date
Feb 2, 2026
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