多物理
淡出
降级(电信)
材料科学
电池(电)
阳极
热的
计算机科学
机械
容量损失
电解质
瞬态(计算机编程)
电流(流体)
电压
粒子(生态学)
断裂力学
断裂(地质)
核工程
传质
热障涂层
生物系统
纳米技术
作者
Xiao-Ying Ma,Xue Li,Cong Li,Jintao Shi,Xingcun Fan,Zifeng Cong,Xiaolong Feng,Jiuchun Jiang,Xiao-Guang Yang
出处
期刊:Batteries
[Multidisciplinary Digital Publishing Institute]
日期:2026-01-16
卷期号:12 (1): 30-30
标识
DOI:10.3390/batteries12010030
摘要
Silicon oxide/graphite (SiOx/Gr) anodes are promising candidates for high energy-density lithium-ion batteries. However, their complex multiphysics degradation mechanisms pose challenges for accurately interpreting and predicting capacity fade behavior. In particular, existing multiphysics models typically treat gas generation and solid electrolyte interphase (SEI) growth as independent or unidirectionally coupled processes, neglecting their bidirectional interactions. Here, we develop an electro–thermal–mechanical–gaseous coupled model to capture the dominant degradation processes in SiOx/Gr anodes, including SEI growth, gas generation, SEI formation on cracks, and particle fracture. Model validation shows that the proposed framework can accurately reproduce voltage responses under various currents and temperatures, as well as capacity fade under different thermal and mechanical conditions. Based on this validated model, a mechanistic analysis reveals two key findings: (1) Gas generation and SEI growth are bidirectionally coupled. SEI growth induces gas release, while accumulated gas in turn regulates subsequent SEI evolution by promoting SEI formation through hindered mass transfer and suppressing it through reduced active surface area. (2) Crack propagation within particles is jointly governed by the magnitude and duration of stress. High-rate discharges produce large but transient stresses that restrict crack growth, while prolonged stresses at low rates promote crack propagation and more severe structural degradation. This study provides new insights into the coupled degradation mechanisms of SiOx/Gr anodes, offering guidance for performance optimization and structural design to extend battery cycle life.
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