4.6 Article

Predicting cell-to-cell failure propagation and limits of propagation in lithium-ion cell stacks

期刊

PROCEEDINGS OF THE COMBUSTION INSTITUTE
卷 38, 期 3, 页码 4737-4745

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.proci.2020.06.270

关键词

Battery safety; Lithium-ion battery; Fires; Energy-storage safety

资金

  1. Department of Energy, Office of Electricity's Energy Storage Program
  2. U.S. Department of Energy's National Nuclear Security Administration [DE-NA0003525]

向作者/读者索取更多资源

This research focuses on predicting cell-to-cell failure propagation and propagation limits in lithium-ion cell stacks to better understand and identify safe designs. The new thermal-runaway model is evaluated against propagating failure, showing that high temperature propagating failure predictions are too rapid.
Thermal runaway of lithium-ion batteries is a risk that is magnified when stacks of lithium-ion cells are used for large scale energy storage. When limits of propagation can be identified so that systems can be designed to prevent large scale cascading failure even if a failure does occur, these systems will be safer. This work addresses the prediction of cell-to-cell failure propagation and the propagation limits in lithium-ion cell stacks to better understand and identify safe designs. A thermal-runaway model is presented based on recent developments in thermochemical source terms. It is noted that propagating failure is characterized by temperatures above which calorimetry data is available. Results show high temperature propagating failure predictions are too rapid unless an intra-particle diffusion limit is included, introducing a Damkohler number limiter into the rate expression. This new model form is evaluated against cell-to-cell failure propagation where the end cell of a stack is forced into thermal runaway through a nail-induced short circuit. Limits of propagation for this configuration are identified. Results show cell-to-cell propagation predictions are consistent with measurements over a range of cell states of charge and with the introduction of metal plates between cells to add system heat capacity representative of structural members. This consistency extends from scenarios where propagation occurs through scenarios where propagation is prevented. (c) 2020 The Combustion Institute. Published by Elsevier Inc. All rights reserved.

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