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Fracture behavior of aluminosilicate glass under ballistic impact: An experimental and peridynamic study

  • Jinjin Xu
  • , Zihao Yang
  • , Xuan Wang
  • , Bin Jiang
  • , Minjie Wang
  • , Yulong Li
  • , Xiang Wang
  • Northwestern Polytechnical University Xian
  • Shaanxi Key Laboratory of Impact Dynamics and Engineering Application
  • Xi'an Modern Chemistry Research Institute
  • Nuclear Power Institute of China
  • Ltd.

科研成果: 期刊稿件文章同行评审

1 引用 (Scopus)

摘要

Classical bond-based peridynamic (PD) models are limited in capturing the tensile-compressive asymmetry and strain rate dependence of glass materials. To address these issues, an improved rate-dependent and softening PD (RSPD) model was presented by introducing a damage correction factor to capture compression softening and incorporating dynamic increase factors to account for strain rate effects. The improved RSPD model presents superior performance in predicting crack density and kinetic energy dissipation compared with classical PD model. The ballistic impact response of aluminosilicate glass is investigated by combining the RSPD simulations and experiments. The effects of impact velocity and glass thickness on fracture behavior are analyzed, and the numerical predictions show good agreement with experimental observations. The results indicate that the critical penetration velocity increases with glass thickness, while radial crack density and damage diameter increase with impact velocity but decrease with thickness. Quantitative relationships among contact force, damage ratio, impact velocity, and glass thickness are also established, offering a preliminary evaluation for the design and optimization of impact-resistant glass structures in engineering applications.

源语言英语
期刊论文编号111809
期刊Engineering Fracture Mechanics
333
DOI
出版状态已出版 - 21 2月 2026

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