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Deformation and fracture mechanisms in the calendering process of lithium-ion battery electrodes

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  • Zhang, Junpeng
  • Sun, Jingna
  • Huang, Huagui
  • Ji, Ce
  • Yan, Meng
  • Yuan, Zhenge

Abstract

Calendering is an essential step to densify the porous structure of lithium-ion battery electrodes, enhancing the energy density and mechanical properties. This process involves mechanical interactions among particles and between particles and current collector. Microscopic damage from particle embedding into the current collector surface reduces the tensile strength, causing electrode fractures during calendering. This study investigated the evolution of electrode morphology, porosity, and specific surface area under incremental calendering. Additionally, the effects of active particle morphology and structural densification on electrode conductivity were analyzed. Microscale scratch and peel tests were conducted to determine the relationship between the line load and coating cohesion to analyzing current collector fracture behavior. The results show that an increased line load boosts coating cohesion but increases the susceptibility of the current collector to fracturing, ultimately reducing electrode fracture energy. This study elucidates the deformation and fracture mechanisms under the combined effects of coating densification and microscopic damage to the current collector during the calendering process, providing insights for optimizing process parameters and coordinated control.

Suggested Citation

  • Zhang, Junpeng & Sun, Jingna & Huang, Huagui & Ji, Ce & Yan, Meng & Yuan, Zhenge, 2024. "Deformation and fracture mechanisms in the calendering process of lithium-ion battery electrodes," Applied Energy, Elsevier, vol. 373(C).
  • Handle: RePEc:eee:appene:v:373:y:2024:i:c:s0306261924012832
    DOI: 10.1016/j.apenergy.2024.123900
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    References listed on IDEAS

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    1. Cheng Yang & Huachun Ma & Ruichuan Yuan & Kuangyu Wang & Kai Liu & Yuanzheng Long & Fei Xu & Lei Li & Haitian Zhang & Yingchuan Zhang & Xiaoyan Li & Hui Wu, 2023. "Roll-to-roll prelithiation of lithium-ion battery anodes by transfer printing," Nature Energy, Nature, vol. 8(7), pages 703-713, July.
    2. F. Degen & M. Winter & D. Bendig & J. Tübke, 2023. "Energy consumption of current and future production of lithium-ion and post lithium-ion battery cells," Nature Energy, Nature, vol. 8(11), pages 1284-1295, November.
    3. Song, Yanjie & Gao, Kai & He, Chunwang & Wu, Yikun & Yang, Shuangquan & Li, Na & Yang, Le & Mao, Yiqi & Song, Wei-Li & Chen, Haosen, 2023. "Exploring particle-current collector contact damage in Li-ion battery using DEM-FEM scheme," Applied Energy, Elsevier, vol. 351(C).
    4. Zhu, Juner & Zhang, Xiaowei & Luo, Hailing & Sahraei, Elham, 2018. "Investigation of the deformation mechanisms of lithium-ion battery components using in-situ micro tests," Applied Energy, Elsevier, vol. 224(C), pages 251-266.
    5. Li, Da & Deng, Junjun & Zhang, Zhaosheng & Liu, Peng & Wang, Zhenpo, 2023. "Multi-dimension statistical analysis and selection of safety-representing features for battery pack in real-world electric vehicles," Applied Energy, Elsevier, vol. 343(C).
    6. Zhang, Yue & Cheng, Siyuan & Mei, Wenxin & Jiang, Lihua & Jia, Zhuangzhuang & Cheng, Zhixiang & Sun, Jinhua & Wang, Qingsong, 2023. "Understanding of thermal runaway mechanism of LiFePO4 battery in-depth by three-level analysis," Applied Energy, Elsevier, vol. 336(C).
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