利用损伤材料建模研究准静电荷硅基和 NMC 基电极的老化和均质机械特性

IF 4.6 4区 化学 Q2 ELECTROCHEMISTRY Batteries Pub Date : 2023-12-06 DOI:10.3390/batteries9120582
Shahbaz Ahmed, Jochen Zausch, H. Grimm‐Strele, Matthias Kabel
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引用次数: 0

摘要

硅基高能量密度电极由于在充放电过程中不断膨胀和收缩,导致严重的微观结构退化。这种机械降解行为通过改变微结构形态、改变运输参数和活性体积损失来影响电池的寿命。由于机械退化的直接实验观察具有挑战性,我们开发了一种基于真实三维电极微结构的计算机模拟方法。通过假设准静态循环,并考虑到电极成分的机械性能,我们计算了非均匀变形和由此产生的形态变化。此外,我们实现了一个老化模型,使我们能够在多个循环中计算异质演化的损伤场。从损伤场可以推断出电极的剩余容量。利用该技术,研究了石墨颗粒和硅碳复合颗粒(SiC-C)的阳极和摩尔比为8:1:1的锂-镍-锰-钴氧化物(NMC811)的阴极。在两级均匀化方法中,我们首先计算了硅复合颗粒的有效力学性能,其次计算了整个电极的微观结构。通过引入损伤应变比,研究了石墨SiC-C共混阳极在95次充放电循环下的降解演化过程。通过这项工作,我们展示了一种有效处理电池电极机械损伤的方法。这是电化学模拟完全耦合的基础。
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Aging and Homogenized Mechanical Character of Quasi-Statically Charged Gr-Si and NMC Based Electrodes Using Damage Material Modeling
Silicon-based, high-energy-density electrodes show severe microstructural degradation due to continuous expansion and contraction upon charging and discharging. This mechanical degradation behaviour affects the cell’s lifetime by changing the microstructure morphology, altering transport parameters, and active volume losses. Since direct experimental observations of mechanical degradation are challenging, we develop a computer simulation approach that is based on real three-dimensional electrode microstructures. By assuming quasi-static cycling and taking into account the mechanical properties of the electrode’s constituents we calculate the heterogeneous deformation and resulting morphological changes. Additionally, we implement an ageing model that allows us to compute a heterogeneously evolving damage field over multiple cycles. From the damage field, we infer the remaining electrode capacity. Using this technique, an anode blend of graphite particles and silicon carbon composite particles (SiC-C) as well as a cathode consisting of Lithium-Nickel-Manganese-Cobalt Oxide with molar ratio of 8:1:1 (NMC811) are studied. In a two-level homogenization approach, we compute, firstly, the effective mechanical properties of silicon composite particles and, secondly, the whole electrode microstructure. By introducing the damage strain ratio, the degradation evolution of the graphite SiC-C anode blend is studied for up to 95 charge-discharge cycles. With this work, we demonstrate an approach to how mechanical damage of battery electrodes can be treated efficiently. This is the basis for a full coupling to electrochemical simulations.
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来源期刊
Batteries
Batteries Energy-Energy Engineering and Power Technology
CiteScore
4.00
自引率
15.00%
发文量
217
审稿时长
7 weeks
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