4.6 Article

A Fractional-Order Kinetic Battery Model of Lithium-Ion Batteries Considering a Nonlinear Capacity

Journal

ELECTRONICS
Volume 8, Issue 4, Pages -

Publisher

MDPI
DOI: 10.3390/electronics8040394

Keywords

kinetic battery model; lithium-ion batteries; nonlinear capacity; fractional calculus

Funding

  1. National Natural Science Foundation of China [61527809, U1864205, U1764258, 61633015]
  2. National Key Research and Design program of China [2018YFB0104000]

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Accurate battery models are integral to the battery management system and safe operation of electric vehicles. Few investigations have been conducted on the influence of current rate (C-rate) on the available capacity of the battery, for example, the kinetic battery model (KiBaM). However, the nonlinear characteristics of lithium-ion batteries (LIBs) are closer to a fractional-order dynamic system because of their electrochemical materials and properties. The application of fractional-order models to represent physical systems is timely and interesting. In this paper, a novel fractional-order KiBaM (FO-KiBaM) is proposed. The available capacity of a ternary LIB module is tested at different C-rates, and its parameter identifications are achieved by the experimental data. The results showed that the estimated errors of available capacity in the proposed FO-KiBaM were low over a wide applied current range, specifically, the mean absolute error was only 1.91%.

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