2D Discrete Element Simulation of Electrode Structural Evolutions in Li-Ion Battery During Drying and Calendering

IF 3.6 4区 工程技术 Q3 ENERGY & FUELS Energy technology Pub Date : 2024-08-24 DOI:10.1002/ente.202400583
Yuhang Lyu, Shaohai Dong, Zhan-Sheng Guo
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Abstract

Drying and calendering are critical steps in the manufacture of electrodes for lithium-ion battery that affect their mechanical and electrochemical properties. A 2D representative volume element (RVE) model, including active material and carbon binder domain particles of different shapes and sizes, is developed. The evolution of the RVE structure is simulated using the discrete element method, providing insight into changes in velocity, coordination number, porosity, pore size distribution, tortuosity, and stress. Based on this analysis, a three-step drying scheme is proposed in accordance with the experimental drying results. In addition, the calendering process significantly improves the mechanical integrity and electronic conductivity of the electrode. Through simulations and experimental observations of changes in surface morphology and porosity, an optimal compression ratio of about 20% is determined for the electrode.

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锂离子电池干燥和压延过程中电极结构演变的二维离散元模拟
干燥和压延是制造锂离子电池电极的关键步骤,会影响电极的机械和电化学性能。我们开发了一个二维代表性体积元素(RVE)模型,其中包括不同形状和大小的活性材料和碳粘合剂域颗粒。使用离散元素法模拟了 RVE 结构的演变,深入了解了速度、配位数、孔隙率、孔径分布、迂回度和应力的变化。在此分析基础上,根据实验干燥结果提出了三步干燥方案。此外,压延工艺显著改善了电极的机械完整性和电子导电性。通过对表面形态和孔隙率变化的模拟和实验观察,确定了电极的最佳压缩率约为 20%。
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来源期刊
Energy technology
Energy technology ENERGY & FUELS-
CiteScore
7.00
自引率
5.30%
发文量
0
审稿时长
1.3 months
期刊介绍: Energy Technology provides a forum for researchers and engineers from all relevant disciplines concerned with the generation, conversion, storage, and distribution of energy. This new journal shall publish articles covering all technical aspects of energy process engineering from different perspectives, e.g., new concepts of energy generation and conversion; design, operation, control, and optimization of processes for energy generation (e.g., carbon capture) and conversion of energy carriers; improvement of existing processes; combination of single components to systems for energy generation; design of systems for energy storage; production processes of fuels, e.g., hydrogen, electricity, petroleum, biobased fuels; concepts and design of devices for energy distribution.
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