4D Insights Into Lithium-Ion Battery Sidewall Rupture During Thermal Runaway: Article No. 103095

  • Matilda Fransson
  • , Ludovic Broche
  • , Jonas Pfaff
  • , Matteo Venturelli
  • , Mark Buckwell
  • , Arthur Fordham
  • , Charlie Kirchner-Burles
  • , Hamish Reid
  • , Mahesh Gedara
  • , Sebastian Schopferer
  • , Donal Finegan
  • , James Robinson
  • , Rhodri Jervis
  • , Alexander Rack
  • , Alexander Rack
  • , Eric Darcy
  • , Paul Shearing

Research output: Contribution to journalArticlepeer-review

Abstract

Thermal runaway (TR), characterized by rapid exothermic reactions, presents a serious safety risk in lithium-ion batteries (LiBs). External triggers such as high temperatures, mechanical abuse, or internal short circuits (ISCs) can initiate TR, often resulting in sidewall rupture, which may escalate to catastrophic battery pack failure. In this study, we developed and applied high-speed synchrotron imaging techniques to investigate sidewall rupture mechanisms in LiBs subjected to different triggering scenarios. Using in situ 4D tomographic imaging, we visualized the dynamic evolution of sidewall rupture with high spatial and temporal resolution. The results revealed distinct failure behaviors linked to each trigger, underscoring the complex and condition-specific nature of sidewall breach and battery failure. These insights highlight the critical importance of implementing tailored safety strategies across diverse applications. Our findings demonstrate the powerful potential of synchrotron high-speed tomography as a diagnostic tool for advanced safety testing and cell qualification.
Original languageAmerican English
Number of pages10
JournalCell Reports Physical Science
Volume7
Issue number2
DOIs
StatePublished - 2026

NLR Publication Number

  • NLR/JA-5700-99380

Keywords

  • battery safety
  • high-speed imaging
  • li-ion batteries
  • thermal runaway
  • x-ray tomography

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