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Understanding rapid charge and discharge in...
Journal article

Understanding rapid charge and discharge in nano-structured lithium iron phosphate cathodes

Abstract

A Doyle–Fuller–Newman (DFN) model for the charge and discharge of nano-structured lithium iron phosphate (LFP) cathodes is formulated on the basis that lithium transport within the nanoscale LFP electrode particles is much faster than cell discharge, and is therefore not rate limiting. We present some numerical solutions to the model and show that for relevant parameter values, and a variety of C-rates, it is possible for sharp discharge fronts to form and intrude into the electrode from its outer edge(s). These discharge fronts separate regions of fully utilised LFP electrode particles from those that are not. Motivated by this observation an asymptotic solution to the model is sought. The results of the asymptotic analysis of the DFN model lead to a reduced order model, which we term the reaction front model (or RFM). Favourable agreement is shown between solutions to the RFM and the full DFN model in appropriate parameter regimes. The RFM is significantly cheaper to solve than the DFN model, and therefore has the potential to be used in scenarios where computational costs are prohibitive, e.g. in optimisation and parameter estimation problems or in engineering control systems.

Authors

CASTLE M; RICHARDSON G; FOSTER JM

Journal

European Journal of Applied Mathematics, Vol. 33, No. 2, pp. 328–368

Publisher

Cambridge University Press (CUP)

Publication Date

April 1, 2022

DOI

10.1017/s0956792521000036

ISSN

0956-7925
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