A comparison of mathematical models for phase separation in high-rate LiFePO4 cathodes


Autoria(s): Dargaville, S.; Farrell, T.W.
Data(s)

30/11/2013

Resumo

We construct a two-scale mathematical model for modern, high-rate LiFePO4cathodes. We attempt to validate against experimental data using two forms of the phase-field model developed recently to represent the concentration of Li+ in nano-sized LiFePO4crystals. We also compare this with the shrinking-core based model we developed previously. Validating against high-rate experimental data, in which electronic and electrolytic resistances have been reduced is an excellent test of the validity of the crystal-scale model used to represent the phase-change that may occur in LiFePO4material. We obtain poor fits with the shrinking-core based model, even with fitting based on “effective” parameter values. Surprisingly, using the more sophisticated phase-field models on the crystal-scale results in poorer fits, though a significant parameter regime could not be investigated due to numerical difficulties. Separate to the fits obtained, using phase-field based models embedded in a two-scale cathodic model results in “many-particle” effects consistent with those reported recently.

Identificador

http://eprints.qut.edu.au/72196/

Publicador

Elsevier

Relação

DOI:10.1016/j.electacta.2013.08.014

Dargaville, S. & Farrell, T.W. (2013) A comparison of mathematical models for phase separation in high-rate LiFePO4 cathodes. Electrochimica Acta, 111, pp. 474-490.

Direitos

Copyright 2013 Elsevier

Fonte

Institute for Future Environments; School of Mathematical Sciences; Science & Engineering Faculty

Palavras-Chave #010299 Applied Mathematics not elsewhere classified #Cahn-Hilliard-reaction #LiFePO4 #Two-scale #phase-field #shrinking-core
Tipo

Journal Article