» Articles » PMID: 26911922

State of Charge Dependent Mechanical Integrity Behavior of 18650 Lithium-ion Batteries

Overview
Journal Sci Rep
Specialty Science
Date 2016 Feb 26
PMID 26911922
Citations 8
Authors
Affiliations
Soon will be listed here.
Abstract

Understanding the mechanism of mechanical deformation/stress-induced electrical failure of lithium-ion batteries (LIBs) is important in crash-safety design of power LIBs. The state of charge (SOC) of LIBs is a critical factor in their electrochemical performance; however, the influence of SOC with mechanical integrity of LIBs remains unclear. This study investigates the electrochemical failure behaviors of LIBs with various SOCs under both compression and bending loadings, underpinned by the short circuit phenomenon. Mechanical behaviors of the whole LIB body, which is regarded as an intact structure, were analyzed in terms of structure stiffness. Results showed that the mechanical behaviors of LIBs depend highly on SOC. Experimental verification on the cathode and anode sheet compression tests show that higher SOC with more lithium inserted in the anode leads to higher structure stiffness. In the bending tests, failure strain upon occurrence of short circuit has an inverse linear relationship with the SOC value. These results may shed light on the fundamental physical mechanism of mechanical integrity LIBs in relation to inherent electrochemical status.

Citing Articles

Understanding of Stress-Driven Internal Short Circuit Mechanisms in Lithium-Ion Batteries with High SOCs.

Duan X, Li J, Jia Y, Gao X, Wang L, Xu J Adv Sci (Weinh). 2023; 10(29):e2302496.

PMID: 37555288 PMC: 10582443. DOI: 10.1002/advs.202302496.


Deformation and Failure Properties of High-Ni Lithium-Ion Battery under Axial Loads.

Wang G, Zhang S, Li M, Wu J, Wang B, Song H Materials (Basel). 2021; 14(24).

PMID: 34947438 PMC: 8705176. DOI: 10.3390/ma14247844.


Cause and Mitigation of Lithium-Ion Battery Failure-A Review.

Kaliaperumal M, Dharanendrakumar M, Prasanna S, Abhishek K, Chidambaram R, Adams S Materials (Basel). 2021; 14(19).

PMID: 34640071 PMC: 8510069. DOI: 10.3390/ma14195676.


Self-Polymerized Dopamine Nanoparticles Modified Separators for Improving Electrochemical Performance and Enhancing Mechanical Strength of Lithium-Ion Batteries.

Hao W, Kong D, Xie J, Chen Y, Ding J, Wang F Polymers (Basel). 2020; 12(3).

PMID: 32178318 PMC: 7182880. DOI: 10.3390/polym12030648.


A degradation-based sorting method for lithium-ion battery reuse.

Chen H, Shen J PLoS One. 2017; 12(10):e0185922.

PMID: 29023485 PMC: 5638292. DOI: 10.1371/journal.pone.0185922.


References
1.
Liu X, Wang J, Huang S, Fan F, Huang X, Liu Y . In situ atomic-scale imaging of electrochemical lithiation in silicon. Nat Nanotechnol. 2012; 7(11):749-56. DOI: 10.1038/nnano.2012.170. View

2.
Pharr M, Zhao K, Wang X, Suo Z, Vlassak J . Kinetics of initial lithiation of crystalline silicon electrodes of lithium-ion batteries. Nano Lett. 2012; 12(9):5039-47. DOI: 10.1021/nl302841y. View

3.
Kang B, Ceder G . Battery materials for ultrafast charging and discharging. Nature. 2009; 458(7235):190-3. DOI: 10.1038/nature07853. View

4.
Balke N, Jesse S, Kim Y, Adamczyk L, Tselev A, Ivanov I . Real space mapping of Li-ion transport in amorphous Si anodes with nanometer resolution. Nano Lett. 2010; 10(9):3420-5. DOI: 10.1021/nl101439x. View