Research on Micromechanical Behavior of Current Collector of Lithium-Ion Batteries Battery Cathode during the Calendering Process

Author:

Yang Kaiyue1ORCID,Xie Xinbing1,Du Xiaozhong12,Zuo Yang3,Zhang Ying2

Affiliation:

1. School of Mechanical Engineering, Taiyuan University of Science and Technology, Taiyuan 030024, China

2. School of Energy and Materials Engineering, Taiyuan University of Science and Technology, Jincheng 048000, China

3. China Railway Six Bureau Group Co., Ltd., Traffic Engineering Branch, Beijing 100036, China

Abstract

Calendering is a crucial process in the manufacturing of lithium-ion battery electrodes. However, this process introduces several challenges to the current collector, including uneven stress distribution, stress concentration, and plastic pits, which ultimately impact electrode consistency and safety. It is important to note that the load exerted on the current collector during calendering cannot be determined solely through experimental means. Moreover, due to the extremely thin nature of the current collector, there is a size effect problem. To address these issues, this study establishes a lithium-ion battery cathode model based on real experimental data and conducts a numerical simulation of the calendering process. By obtaining the load applied to the current collector and incorporating it into the crystal plasticity model, we investigate the mechanical behavior of the current collector at the crystal level during calendering. The results demonstrate that the lithium battery cathode collectors undergo plastic deformation during calendering. Furthermore, current collectors with a smaller number of grains exhibit a more pronounced stress concentration zone, and their stress levels are highly sensitive to the crystal direction. The maximum stress fluctuation range can reach approximately 100 MPa. Conversely, current collectors with a greater number of grains exhibit a more uniform stress distribution during calendering and are less sensitive to the crystal orientation. Their stress levels remain stable within a smaller range, approximately 20 MPa. These findings justify and emphasize the importance of investigating the current collector at the microscopic level, thereby providing valuable research insights for the field of calendering.

Funder

the Natural Science Foundation of Shanxi Province, China,

the Research Project Supported by Shanxi Scholarship Council of China

the Postgraduate Education Innovation Project in Shanxi Province of China

Science and Technology Innovation Project of Universities in Shanxi

Publisher

MDPI AG

Subject

Process Chemistry and Technology,Chemical Engineering (miscellaneous),Bioengineering

Reference38 articles.

1. Lithium-ion battery: One of the most important inventions in the 20th century;Huang;Chin. Sci. Bull.,2019

2. Current and future lithium-ion battery manufacturing;Liu;IScience,2021

3. Mechanical Analysis and Strength Checking of Current Collector Failure in the Winding Process of Lithium-Ion Batteries;Tao;Acta Mech. Solida Sin.,2021

4. A review of current collectors for lithium-ion batteries;Zhu;J. Power Sources,2021

5. Enabling aqueous binders for lithium battery cathodes—Carbon coating of aluminum current collector;Laszczynski;J. Power Sources,2014

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