阴极
淡出
脆性
材料科学
粒子(生态学)
脆性断裂
离子
降级(电信)
粒径
破损
容量损失
电池(电)
断裂(地质)
复合材料
机械
物理
化学工程
热力学
电气工程
工程类
功率(物理)
海洋学
地质学
声学
量子力学
作者
Jeffery M. Allen,Peter J. Weddle,Ankit Verma,Anudeep Mallarapu,Francois L. E. Usseglio‐Viretta,Donal P. Finegan,Andrew M. Colclasure,Weijie Mai,Volker Schmidt,Orkun Furat,David R. Diercks,Tanvir R. Tanim,Kandler Smith
标识
DOI:10.1016/j.jpowsour.2021.230415
摘要
In this article, we develop a 3D, continuum-level damage model implemented on statistically generated LixNi0.5Mn0.3Co0.2O2 (NMC 532) secondary cathode particles. The primary motivation of the particle-level model is to inform cathode-particle design through detailed exploration of the influence of secondary and primary particle sizes on the damage predicted during operation, and determine charging profiles that reduce cathode fracture. The model considers NMC 532 secondary particles containing an agglomeration of anisotropic, randomly oriented grains. These brittle, Ni-based cathodes are prone to mechanical degradation, which reduces overall battery cycle life. The model predicts that secondary-particle fracture is primarily due to non-ideal grain interactions and high-rate charge demands. The model predicts that small secondary-particles with large grains develop significantly less damage than larger secondary particles with small grains. The model predicts most of the chemo-mechanical damage accumulates in the first few cycles. The chemo-mechanical model predicts monotonically increasing capacity fade with cycling and rate. Comparing to experimental results, the model is well suited for capturing initial capacity fade mechanisms, but additional physics is required to capture long-term capacity fade effects.
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