Author
Listed:
- Guanqiang Ruan
(Automotive Structure and Energy Storage Engineering Center, School of Mechanical Engineering, Shanghai Dianji University, Shanghai 201306, China)
- Yuhang Zhu
(Automotive Structure and Energy Storage Engineering Center, School of Mechanical Engineering, Shanghai Dianji University, Shanghai 201306, China)
- Qingdong Chen
(Technical Center for Industrial Products and Raw Materials Inspection and Testing of Shanghai Customs District, Pudong New Area, Shanghai 201210, China)
- Xiangdong Kong
(Automotive Structure and Energy Storage Engineering Center, School of Mechanical Engineering, Shanghai Dianji University, Shanghai 201306, China)
- Hui Guo
(Technical Service Platform for Noise and Vibration Evaluation and Control of New Energy Vehicles, School of Mechanical and Automotive Engineering, Shanghai University of Engineering Science, Shanghai 201620, China)
- Qingliang Yang
(Automotive Structure and Energy Storage Engineering Center, School of Mechanical Engineering, Shanghai Dianji University, Shanghai 201306, China)
- Yanjie Cai
(Automotive Structure and Energy Storage Engineering Center, School of Mechanical Engineering, Shanghai Dianji University, Shanghai 201306, China)
- Weiguang Yuan
(Automotive Structure and Energy Storage Engineering Center, School of Mechanical Engineering, Shanghai Dianji University, Shanghai 201306, China)
Abstract
Sodium-ion batteries (SIBs) are promising alternatives to lithium-ion batteries because of their low cost and abundant resources. However, the effect of prior low-frequency mechanical vibration on subsequent cycling degradation remains poorly understood. This study investigates commercial 26,700 cylindrical SIBs subjected to low-frequency random vibration pre-treatment followed by stationary cycling. Capacity evolution, DCIR, EIS, IC analysis, and post-cycling SEM observations were used to compare control and vibration-pretreated cells. Vibration pre-treatment produced a slight initial increase in discharge capacity, accompanied by temporarily reduced polarization and increased electrochemical accessibility. During subsequent cycling, the vibration-pretreated cells exhibited faster capacity fade and greater internal-resistance growth, with larger DCIR differences in the low- and high-SOC regions. EIS and IC results indicate aggravated interfacial polarization, charge-transfer limitation, diffusion limitation, and reaction heterogeneity. SEM observations after cycling reveal more pronounced surface irregularities and crack-like features in the vibration-pretreated electrodes, particularly on the anode, consistent with the electrochemical degradation trends. Together, the electrochemical measurements and post-cycling surface observations show that prior low-frequency vibration increased the subsequent degradation of the tested commercial 26,700 cells.
Suggested Citation
Guanqiang Ruan & Yuhang Zhu & Qingdong Chen & Xiangdong Kong & Hui Guo & Qingliang Yang & Yanjie Cai & Weiguang Yuan, 2026.
"Low-Frequency Random Vibration-Induced Cycling Degradation Behavior and Mechanisms of Sodium-Ion Batteries,"
Energies, MDPI, vol. 19(15), pages 1-19, August.
Handle:
RePEc:gam:jeners:v:19:y:2026:i:15:p:3704-:d:2010037
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