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Optimal Lithium-Ion Ageing Mechanisms Configuration for Physics-Based Modelling Software

S. Obrador, L. Canals and L. Trilla

 

2024/07/20

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Abstract

Reduced-order physics-based models hold the potential for enhancing the performance and extending the lifespan of lithium-ion batteries in practical battery management system applications. However, there is an urgent need to establish a correlation framework between these models and the integration of robust adaptative aging mechanisms that represent the electrochemical domain. This article uses SPM parameters and real experimental data to emulate different adaptive block configurations. Aiming to define their requirements and optimal applicability. Results show that electrode diffusivity, particle radius, and the proper identification of its boundaries, are the keys to obtaining physically meaningful results with adaptative ageing mechanisms.

Published in: Renewable Energies, Environment & Power Quality Journal (REE&PQJ), Vol. 2
Pages: 74-81 Date of Publication: 2024/07/20
ISSN: 3020-531 X Date of Current Version: 2024/04/15
REF: 262-24 Issue Date: July 2024
DOI:10.24084/reepqj24.262 Publisher: EA4EPQ

Authors and affiliations

S. Obrador(1,2), L. Canals(2) and L. Trilla(1)

1. Power Systems, Catalonia Institute for Energy Research (IREC), Jardins de les Dones de Negre 1, 2ª pl.
08930 Sant Adrià del Besòs, Barcelona, Spain

2 Project and Construction Engineering Department, Universitat Politècnica de Catalunya (UPC), Campus Diagonal Sud, ETSEIB Building H, Av. Diagonal, 647, 08024 Barcelona

Key words

Lithium-Ion, Ageing Mechanisms, Physics-Based Models, Battery Management Systems.

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