PDF

BattBee: Equivalent Circuit Modeling and Early Detection of Thermal Runaway Triggered by Internal Short Circuits for Lithium-Ion Batteries

Sangwon Kang, Hao Tu

2024enlithium-ionbatteriesthermal runawayfault detectionmodeling

Abstract

Language:

Lithium-ion batteries are the enabling power source for transportation electrification. However, in real-world applications, they remain vulnerable to internal short circuits (ISCs) and the consequential risk of thermal runaway (TR). Toward addressing the challenge of ISCs and TR, we undertake a systematic study that extends from dynamic modeling to fault detection in this paper. First, we develop BattBee, the first equivalent circuit model to specifically describe the onset of ISCs and the evolution of subsequently induced TR. Drawing upon electrochemical modeling, the model can simulate ISCs at different severity levels and predict their impact on the initiation and progression of TR events. With the physics-inspired design, this model offers strong physical interpretability and predictive accuracy, while maintaining structural simplicity to allow fast computation. Then, building upon the BattBee model, we develop fault detection observers and derive detection criteria together with decision-making logics to identify the occurrence and emergence of ISC and TR events. This detection approach is principled in design and fast in computation, lending itself to practical applications. Validation based on simulations and experimental data demonstrates the effectiveness of both the BattBee model and the ISC/TR detection approach. The research outcomes underscore this study’s potential for real-world battery safety risk management.

Download

Cite This Work

@article{2921e455-3e61-4e12-9bff-09973f0a364c,
  title={BattBee: Equivalent Circuit Modeling and Early Detection of Thermal Runaway Triggered by Internal Short Circuits for Lithium-Ion Batteries},
  author={Sangwon Kang and Hao Tu},
  year={2024},
  language={en}
}
TY  - JOUR
TI  - BattBee: Equivalent Circuit Modeling and Early Detection of Thermal Runaway Triggered by Internal Short Circuits for Lithium-Ion Batteries
AU  - Sangwon Kang
AU  - Hao Tu
PY  - 2024
LA  - en
ER  -

Similar Items

640069

Roger Rumbu

2025enPPTX

Powering in Progress A Comprehensive Guide to Battery Technology

Roger Rumbu

"Powering in Progress: A Comprehensive Guide to Battery Technology" is a journey into the heart of this dynamic and indispensable energy storage pheno

2024enPDF$50.00

COURS ACCUMULATTEURS BATTERIES 4

Yaya Dagal D

This document presents an educational module on electrochemical energy storage systems—primary cells, accumulators, and batteries—with specific emphas

2021enPDF

New material allows for better hydrogen-based batteries and fuel cells

Riken

This article reports the development of a room-temperature hydride ion (H⁻)-conducting solid electrolyte, representing a significant advance toward pr

2023enPDF

Team finds major storage capacity in water-based batteries

Raven Wuebker

This article reports recent advances in the development of metal-free, water-based batteries as a safer and more sustainable alternative to convention

2023enPDF

RUBIN TP

2025enPDF