TY - JOUR
T1 - Guided waves propagation in lithium-ion batteries
T2 - Theoretical modeling and experimental analysis
AU - Gao, Jie
AU - Lyu, Yan
AU - Chen, Haosen
AU - Song, Weili
AU - Liu, Hongye
AU - Wu, Bin
AU - He, Cunfu
N1 - Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2024/7
Y1 - 2024/7
N2 - Ultrasonic guided wave detection technology can feasibly measure and monitor the state of charge. The experimental studies in a customized cell were also performed to acquire the relationship between guided waves generated in a pitch-catch mode and battery state of charge (SOC). An analytical acoustic model was developed to model the guided wave propagation characteristics of lithium-ion battery with different SOC. The multi-layered and porous structure of lithium-ion battery was considered by combining the state-vector formalism and the Legendre polynomial method with the Biot theory. Concurrently, the chemo-mechanical coupling problem in the electrochemical reaction process was considered by using the Mechanics of Incremental Deformations theory. Based on this, the relationships between structural characteristics, dynamic coupling characteristics, state of charge and guided wave behavior in commercial lithium-ion batteries were numerically analyzed. The feasibility and accuracy of the numerical model were proved by the comparison of previous experimental time of flight results (Ladpli et al., 2018) [1] and its corresponding theoretical solutions. Furthermore, the extracted experimental time of flights was in good agreement with the theoretical results. The mapping relationship between the state of charge and the propagation characteristics lays a foundation for the nondestructive evaluation and quantitative estimation of the state characteristics of lithium-ion batteries.
AB - Ultrasonic guided wave detection technology can feasibly measure and monitor the state of charge. The experimental studies in a customized cell were also performed to acquire the relationship between guided waves generated in a pitch-catch mode and battery state of charge (SOC). An analytical acoustic model was developed to model the guided wave propagation characteristics of lithium-ion battery with different SOC. The multi-layered and porous structure of lithium-ion battery was considered by combining the state-vector formalism and the Legendre polynomial method with the Biot theory. Concurrently, the chemo-mechanical coupling problem in the electrochemical reaction process was considered by using the Mechanics of Incremental Deformations theory. Based on this, the relationships between structural characteristics, dynamic coupling characteristics, state of charge and guided wave behavior in commercial lithium-ion batteries were numerically analyzed. The feasibility and accuracy of the numerical model were proved by the comparison of previous experimental time of flight results (Ladpli et al., 2018) [1] and its corresponding theoretical solutions. Furthermore, the extracted experimental time of flights was in good agreement with the theoretical results. The mapping relationship between the state of charge and the propagation characteristics lays a foundation for the nondestructive evaluation and quantitative estimation of the state characteristics of lithium-ion batteries.
KW - Chemo-mechanical coupling
KW - Dispersion curves
KW - Lithium-ion battery
KW - Mechanical property
KW - Ultrasonic guided waves
UR - http://www.scopus.com/inward/record.url?scp=85190110350&partnerID=8YFLogxK
U2 - 10.1016/j.ndteint.2024.103102
DO - 10.1016/j.ndteint.2024.103102
M3 - Article
AN - SCOPUS:85190110350
SN - 0963-8695
VL - 145
JO - NDT and E International
JF - NDT and E International
M1 - 103102
ER -