On the validation and applicability of multiphysics models for hydrogen SOFC
Abstract
Solid oxide fuel cells (SOFC) are a viable alternative for environmentally-friendly conversion of hydrogen into energy and multiphysics simulation can be used to diminish the experimental effort to improve their efficiency. However, an appropriate model of the involved processes and their parameters must be chosen. This paper studies the effects of choice between MaxwellâStefan and Fick's law models, and uncertainty of electrode ionic conductivity Ïion and anodic reference exchange current density i0,ref,f, on cell performance as implemented in the COMSOL Multiphysics® software. In the case of MaxwellâStefan, peak average power output increased by 21.9% as Ïion varies from 10â3 to 10â1 S/cm, while the model based on Fick's law shows an increase of 55.2%. The MaxwellâStefan model exhibits an increase in peak power of 6% as i0,ref,f ranges from 0.4 to 0.8 A/cm2, and the Fick's law model an increase of 8.2%. The dependence of the MaxwellâStefan model on Ïion is characterized as logarithmic in the studied range. The MaxwellâStefan model is deemed preferable because its lower sensitivity to the studied parameters helps mitigate uncertainty. It is concluded that despite its limitations, multiphysics modeling is a useful tool for directing research on SOFC materials owing to its descriptive potential.
Más información
| Título según WOS: | On the validation and applicability of multiphysics models for hydrogen SOFC |
| Título según SCOPUS: | On the validation and applicability of multiphysics models for hydrogen SOFC |
| Título de la Revista: | Journal of Power Sources |
| Volumen: | 607 |
| Editorial: | Elsevier B.V. |
| Fecha de publicación: | 2024 |
| Idioma: | English |
| DOI: |
10.1016/j.jpowsour.2024.234493 |
| Notas: | ISI, SCOPUS |