Bulletin of the Chinese Ceramic Society, Volume. 43, Issue 4, 1267(2024)

Influence of Residual Stress Distribution on Falling Ball Impact Strength of Substrate Glass Studied by Numerical Simulation

ZHU Jingwei1... SHU Zhongzhong2, JIN Liangmao2, CAO Zhiqiang2, ZHANG Chong2, ZHENG Jijie3, LIU Yong1,* and HAN Gaorong1 |Show fewer author(s)
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  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
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    The falling ball impact strength is a critical indicator of mechanical properties of electronic substrate glass, significantly influenced by residual stress. This study employed finite element methods to numerically simulate the falling ball impact strength of electronic substrate glass under varying residual stress distribution patterns, paralleled with actual falling ball impact experiments. The results indicate that the numerical simulation can accurately reflect the actual response and fracture morphology of substrate glass in falling ball impact experiment. In numerical simulation, the falling ball impact strength of electronic substrate glass, characterized by the residual mass ratio, exhibits a non-linear relationship with the residual tensile stress in the impacted area. The falling ball impact strength experiences a rapid decline when residual tensile stress exceeds a certain threshold. The residual tensile stress in the impact area significantly amplifies the stress generated by the falling ball impact. A mere 1.0 MPa residual tensile stress could cause the stress generated by the impact to elevate by approximately 10 MPa relative to the situation without residual stress, which is a vital reason for the fall in the falling ball impact strength of electronic substrate glass.

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    ZHU Jingwei, SHU Zhongzhong, JIN Liangmao, CAO Zhiqiang, ZHANG Chong, ZHENG Jijie, LIU Yong, HAN Gaorong. Influence of Residual Stress Distribution on Falling Ball Impact Strength of Substrate Glass Studied by Numerical Simulation[J]. Bulletin of the Chinese Ceramic Society, 2024, 43(4): 1267

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    Paper Information

    Special Issue:

    Received: Oct. 25, 2023

    Accepted: --

    Published Online: Aug. 14, 2024

    The Author Email: Yong LIU (liuyong.mse@zju.edu.cn)

    DOI:

    CSTR:32186.14.

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