4.7 Article

Effect of chemical strengthening residual stress on the flexural performance and fracture behavior of aluminosilicate glass

期刊

ENGINEERING FRACTURE MECHANICS
卷 258, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.engfracmech.2021.108104

关键词

Aluminosilicate glass; Chemical strengthening; Residual stress; Flexural strength; Fracture mode

资金

  1. National Natural Science Foundation of China [11772268, 11522220, 11527803, 11627901]
  2. 111 project [BP0719007]
  3. Chinese Scholarship Council [201906290120]
  4. Italian Ministry of Education, University and Research

向作者/读者索取更多资源

In this study, the influence of chemical strengthening residual stress on the flexural strength and fracture behavior of aluminosilicate glass was investigated using a combination of experimental, theoretical, and numerical approaches. It was found that the mechanical strength of chemically strengthened glass is closely related to the depth of the chemical strengthening layer and surface flaw depth. The proposed finite element numerical method was able to accurately replicate the mechanical strength and failure modes of both annealed and chemically strengthened glass, demonstrating the effectiveness of the approach in representing the discrete fracture behavior and strengthening effect of silicate glass.
In this hybrid experimental, theoretical and numerical study the effect of chemical strengthening residual stress on the flexural strength and fracture behavior of aluminosilicate glass was investigated. Three-point bending tests were conducted on annealed and chemically strengthened glass specimens to obtain the flexural strength of both specimens and with the aid of high-speed cameras, the fracture and failure modes of these two kinds of specimens were analyzed and compared. A theoretical analysis based on the elastic fracture mechanics theory was employed to explain the strengthening effect of chemically strengthened glass. It is shown that the mechanical strength of chemically strengthened glass is highly related to the relation of the chemically strengthened layer depth and the surface flaw depth. Furthermore, this study provides an effective numerical approach to replicate the mechanical strength and failure modes for both annealed and chemically strengthened glass. The proposed finite element numerical method includes modeling techniques which consider the presence of pre-stress, random distributed surface flaws and the fracture onset in glass specimens. The residual stress pattern was defined exploiting the dynamic relaxation process for temperature-induced expansion of the elements before the loading process. Discrete distributed surface flaws were inserted in the model, the brittle fracture of glass was represented by the smeared crack method and the numerical results were compared to experimental data. It's illustrated that the proposed method can be used to represent both the discrete fracture behavior and the chemically-strengthening effect of silicate glass.

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