Abstract
Mechanical abuse poses a critical safety risk to Li-ion batteries by inducing internal short circuits that initiate thermal runaway. Remarkably, voltage recovery frequently emerges during thermal runaway initiation, a phenomenon that conventional theories fail to explain. Our study develops a new multiphysics mechanism to explain voltage recovery, termed gas-driven short disconnection, whereby internal gas pressure mechanically disengages short-circuit contacts and causes the cell voltage to rebound. This mechanism incorporates gas generation and its structural impact on the short circuit. Real-time optical and thermal imaging and X-ray computed tomography reveal fluid-structure interaction between internal gas flow and adjacent shorting contacts. We establish a mechanistic framework linking gas-driven short disconnection to cell-level voltage and temperature responses, elucidating the extension–truncation pattern of voltage recovery. Furthermore, thermal regime maps show that a voltage recovery duration exceeding 5 s correlates with limited temperature rise below 150 °C, indicating that sustained short-circuit disconnection suppresses Joule heating. Additionally, a dimensionless criterion is deduced from scaling analysis for physical plausibility of gas-driven short disconnection in mechanically abused cells. This finding inspires smart venting control, which regulates gas release to maintain the internal pressure while dissipating gas enthalpy, thereby providing a device-level strategy for thermal runaway mitigation.
| Original language | English |
|---|---|
| Article number | 240533 |
| Journal | Journal of Power Sources |
| Volume | 688 |
| DOIs | |
| State | Published - Oct 1 2026 |
Funding
Young Ko was supported in part by an appointment to the Oak Ridge National Laboratory GRO Program, sponsored by the U.S. Department of Energy and administered by the Oak Ridge Science and Education (ORISE). Additional support was provided by the Center for Battery Sustainability. Young Ko and Yash Samantaray acknowledge support from the National Science Foundation (NSF) Graduate Research Fellowship (GRFP) under Grant No. 2141064. Kathleen Hartono and Rahul Mallela were supported in part by the U.S. Department of Energy, Office of Science, Office of Workforce Development for Teachers and Scientists (WDTS) the Science Undergraduate Laboratory Internships Program(SULI). This work was supported by the Department of Energy (DOE), Office of Electricity (OE) at Oak Ridge National Laboratory managed by UTBattelle LLC under contract DE-AC05-00OR22725. The authors would also like to acknowledge Debbie Zhuang, Shakul Pathak, and Daniel Markiewitz for valuable discussions.
Keywords
- Gas-driven short disconnection
- Internal short circuit
- Lithium-ion batteries
- Thermal runaway
- Thermo-electrochemical propagation
- Voltage recovery
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