Theoretical Prediction of Fracture of Initially Crack-Free Brittle Materials

被引:3
作者
Akcay, Fuzuli Agri [1 ,2 ]
机构
[1] Istanbul Tech Univ, Gemi Insaati & Deniz Bilimleri Fak, TR-34469 Istanbul, Turkey
[2] Milli Savunma Univ, Deniz Harp Okulu, TR-34942 Istanbul, Turkey
来源
ECF22 - LOADING AND ENVIRONMENTAL EFFECTS ON STRUCTURAL INTEGRITY | 2018年 / 13卷
关键词
Brittle fracture; Strength; Characteristic length; Energy release rates;
D O I
10.1016/j.prostr.2018.12.353
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Accurate determination of failure is crucial for designing engineering structures as their failure may cause not only economic loss but also loss of human life. Brittle fracture is a type of material failure, and literature on brittle fracture mainly focuses on fracture of bodies with pre-existing crack. In this study, however, a new brittle fracture criterion (of tensile mode) that is applicable at quasi static loading conditions is proposed for initially crack-free bodies. The fracture criterion is based on the continuum modeling of energy release rates and it is developed using Karr-Akcay energy balance concept. The criterion can be implemented to determine (Mode I) fracture toughness of a material as well as (fracture) strength of a material if its characteristic length is known, whereas the characteristic length of a material can be obtained (using the proposed criterion) if its (fracture) strength is known. Tensile strength of a gray cast iron is determined using the proposed criterion and compared to the results in the literature. Theoretical result is in good agreement with the experimental result published in the open literature. (C) 2018 The Authors. Published by Elsevier B.V.
引用
收藏
页码:1695 / 1701
页数:7
相关论文
共 12 条
  • [1] [Anonymous], 2005, FRACTURE MECH FUNDAM
  • [2] Strain Rate and Stress-State Dependence of Gray Cast Iron
    Brauer, S. A.
    Whittington, W. R.
    Johnson, K. L.
    Li, B.
    Rhee, H.
    Allison, P. G.
    Crane, C. K.
    Horstemeyer, M. F.
    [J]. JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME, 2017, 139 (02):
  • [3] The past, present, and future of fracture mechanics
    Cotterell, B
    [J]. ENGINEERING FRACTURE MECHANICS, 2002, 69 (05) : 533 - 553
  • [4] Dieter G.E., 1986, MECH METALLURGY
  • [5] Ductile tearing in part-through cracks: Experiments and cell-model predictions
    Gao, X
    Faleskog, J
    Shih, CF
    Dodds, RH
    [J]. ENGINEERING FRACTURE MECHANICS, 1998, 59 (06) : 761 - 777
  • [6] Griffith AA. VI, 1921, Philos. Trans. R. Soc. London, V221, P163, DOI 10.1098/rsta.1921.0006
  • [7] In Situ fracture observation and fracture toughness analysis of pearlitic graphite cast irons with different nodularity
    Han, Seung Youb
    Sohn, Seok Su
    Shin, Sang Yong
    Lee, Sunghak
    Suh, Yong Chan
    [J]. METALS AND MATERIALS INTERNATIONAL, 2013, 19 (04) : 673 - 682
  • [8] A criterion for ductile fracture based on continuum modeling of energy release rates
    Karr, Dale G.
    Akcay, Fuzuli Agri
    [J]. INTERNATIONAL JOURNAL OF FRACTURE, 2016, 197 (02) : 201 - 212
  • [9] The Theory of Critical Distances to assess failure strength of notched plain concrete under static and dynamic loading
    Pelekis, Iason
    Susmel, Luca
    [J]. ENGINEERING FAILURE ANALYSIS, 2017, 82 : 378 - 389
  • [10] Taylor D., 2007, THEORY CRITICAL DIST