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Diagnosis of Current Flow Patterns Inside Fault-Simulated Li-Ion Batteries via Non-Invasive, In Operando Magnetic Field Imaging

Title
Diagnosis of Current Flow Patterns Inside Fault-Simulated Li-Ion Batteries via Non-Invasive, In Operando Magnetic Field Imaging
Author(s)
Lee, MingyuShin, YewonChang, HongjunJin, DaheeLee, HyuntaeLim, MinhongSeo, JiyeonBand, TinoKaufmann, KaiMoon, JanghyukLee, Yong MinLee, Hongkyung
Issued Date
2023-09
Citation
Small Methods, v.7, no.11
Type
Article
Author Keywords
battery diagnosisbattery faultscurrent distributionfault-simulated batteriesin operandoLi-ion batteriesmagnetic-field imaging
Keywords
LITHIUMCELLDESIGNCHARGEBEHAVIORDEFECTSCIRCUITGROWTHSTATE
ISSN
2366-9608
Abstract
With the growing popularity of Li-ion batteries in large-scale applications, building a safer battery has become a common goal of the battery community. Although the small errors inside the cells trigger catastrophic failures, tracing them and distinguishing cell failure modes without knowledge of cell anatomy can be challenging using conventional methods. In this study, a real-time, non-invasive magnetic field imaging (MFI) analysis that can signal the battery current-induced magnetic field and visualize the current flow within Li-ion cells is developed. A high-speed, spatially resolved MFI scan is used to derive the current distribution pattern from cells with different tab positions at a current load. Current maps are collected to determine possible cell failures using fault-simulated batteries that intentionally possess manufacturing faults such as lead-tab connection failures, electrode misalignment, and stacking faults (electrode folding). A modified MFI analysis exploiting the magnetic field interference with the countercurrent-carrying plate enables the direct identification of defect spots where abnormal current flow occurs within the pouch cells. © 2023 Wiley-VCH GmbH.
URI
http://hdl.handle.net/20.500.11750/46656
DOI
10.1002/smtd.202300748
Publisher
Wiley
Related Researcher
  • 이홍경 Lee, Hongkyung
  • Research Interests Batteries; Electrochemistry; Interfaces
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Appears in Collections:
Department of Energy Science and Engineering Electrochemical Materials & Devices Laboratory 1. Journal Articles
Department of Energy Science and Engineering Battery Materials & Systems LAB 1. Journal Articles

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