LI Yi-fan, DONG Shi-ming, LI Nian-bin, HUA Wen. A Strain-Based Criterion for General[J]. Applied Mathematics and Mechanics, 2017, 38(4): 447-456. doi: 10.21656/1000-0887.370212
Citation: LI Yi-fan, DONG Shi-ming, LI Nian-bin, HUA Wen. A Strain-Based Criterion for General[J]. Applied Mathematics and Mechanics, 2017, 38(4): 447-456. doi: 10.21656/1000-0887.370212

A Strain-Based Criterion for General

doi: 10.21656/1000-0887.370212
Funds:  The National Natural Science Foundation of China(11172186)
  • Received Date: 2016-07-11
  • Rev Recd Date: 2016-08-20
  • Publish Date: 2017-04-15
  • The maximum tangential strain (MTSN) criterion proposed in the past under mixed mode Ⅰ/Ⅱ loading was extended to spatial cracks. The effects of the Poisson’s ratio on the in-plane and out-of-plane fracture angles and on the fracture envelopes were detailedly discussed for mixed mode cracks. It is shown that the Poisson’s ratio has little effect on the out-of-plane fracture angles for mixed mode Ⅰ/Ⅲ cracks. For mixed modes Ⅱ/Ⅲ and Ⅰ/Ⅱ/Ⅲ cracks, a higher value of the Poisson’s ratio would bring a smaller value of in-plane fracture angle θf but a bigger value of out-of-plane fracture angle φf. It is also shown that the fracture envelope decreases with the Poisson’s ratio for mixed mode cracks. The influence of the Poisson’s ratio on the fracture envelope is greater than that on the in-plane fracture angle and is the least on the out-of-plane fracture angle. The theoretical results fit the experimental data well, so the extended MTSN criterion can predict spatial fracture satisfactorily.
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  • [1]
    Liu S, Chao Y J, Zhu X. Tensile-shear transition in mixed mode Ⅰ/Ⅲ fracture[J]. International Journal of Solids and Structures,2004,41(22/23): 6147-6172.
    [2]
    Berto F, Cendon D A, Lazzarin P, et al. Fracture behaviour of notched round bars made of PMMA subjected to torsion at -60 ℃[J]. Engineering Fracture Mechanics,2013,102: 271-287.
    [3]
    Ameri M, Mansourian A, Khavas M H, et al. Cracked asphalt pavement under traffic loading—a 3D nite element analysis[J]. Engineering Fracture Mechanics,2011,78(8): 1817-1826.
    [4]
    倪新华, 刘协权, 马英忱. Ⅰ-Ⅲ混合型裂纹相变增韧分析[J]. 内蒙古工业大学学报, 1997,16(3): 68-72.(NI Xin-hua, LIU Xie-quan, MA Ying-chen. Phase-change toughening analysis of Ⅰ-Ⅲ mixed mode cracks[J]. Journal of Inner Mongolia Polytechnic University,1997,16(3): 68-72.(in Chinese))
    [5]
    黎立云, 宁海龙, 许凤光, 等. Ⅲ型裂纹断裂韧性测试及数值分析[J]. 岩石力学与工程学报, 2006,25(12): 2523-2528.(LI Li-yun, NING Hai-long, XU Feng-guang, et al. Test and numerical analysis of fracture toughness model Ⅲ fracture[J]. Chinese Journal of Rock Mechanics and Engineering,2006,25(12): 2523-2528.(in Chinese))
    [6]
    谢海峰, 饶秋华, 王志. 反平面剪切(Ⅲ型)加载下脆性岩石的断口分析[J]. 岩石力学与工程学报, 2007,26(9): 1832-1839.(XIE Hai-feng, RAO Qiu-hua, WANG Zhi. Fracture morphology analysis of brittle rock under anti-plane shear (mode Ⅲ) loading[J]. Chinese Journal of Rock Mechanics and Engineering,2007,26(9): 1832-1839.(in Chinese))
    [7]
    Erdogan F, Sih G C. On the crack extension in plates under plane loading and transverse shear[J]. Journal of Basic Engineering,1963,85(4): 519-527.
    [8]
    Sih G C. Strain-energy-density factor applied to mixed mode crack problems[J]. International Journal of Fracture,1974,10(3): 305-321.
    [9]
    Sih G C. Some basic problems in fracture mechanics and new concepts[J]. Engineering Fracture Mechanics,1973,5(2): 365-377.
    [10]
    Kong X M, Schlüter N, Dahl W. Effect of triaxial stress on mixed-mode fracture[J]. Engineering Fracture Mechanics,1995,52(2): 379-388.
    [11]
    Chang K J. On the maximum strain criterion—a new approach to the angled crack problem[J]. Engineering Fracture Mechanics,1981,14(1): 107-124.
    [12]
    Sih G C. Mechanics of Fracture Initiation and Propagation [M]. Kluwer Academic, 1991.
    [13]
    Chang J, Xu J, Mutoh Y. A general mixed-mode brittle fracture criterion for cracked materials[J]. Engineering Fracture Mechanics,2006,73(9): 1249-1263.
    [14]
    Tai Y H, Brown M W, Yates J R. A new solution for 3D crack extension based on linear elastic stress fields[J]. Engineering Fracture Mechanics,2011,78(8): 1602-1613.
    [15]
    Ayatollahi M R, Saboori B. T-stress effects in mixed mode Ⅰ/Ⅱ/Ⅲ brittle fracture[J]. Engineering Fracture Mechanics,2015,144: 32-45.
    [16]
    Ayatollahi M R, Saboori B. Maximum tangential strain energy density criterion for general mixed mode Ⅰ/Ⅱ/Ⅲ brittle fracture[J]. International Journal of Damage Mechanics,2015,24(2): 263-278.
    [17]
    Wu X, Li X. Analysis and modification of fracture criteria for mixed-mode crack[J].Engineering Fracture Mechanics,1989,34(1): 55-64.
    [18]
    Maiti S K, Smith R A. Criteria for brittle fracture in biaxial tension[J]. Engineering Fracture Mechanics,1984,19(5): 793-804.
    [19]
    Nalla R K, Kinney J H, Ritchie R O. Mechanistic fracture criteria for the failure of human cortical bone[J]. Nature Materials,2003,2(3): 164-168.
    [20]
    Timoshenko S P. History of Strength of Materials [M]. New York: McGraw-Hill, 1953.
    [21]
    William M L. On the stress distribution function of wide applicability[J]. Journal of Applied Mechanics,1957,24: 109-114.
    [22]
    Richard H A, Fulland M, Sander M. Theoretical crack path prediction[J]. Fatigue & Fracture of Engineering Materials & Structures,2005,28: 3-12.
    [23]
    Chatterjee U. Advanced Mathematical Analysis: Theory & Problems [M]. Academic Publishers, 2010.
    [24]
    Khan S M A, Khraisheh M K. Analysis of mixed mode crack initiation angles under various loading conditions[J]. Engineering Fracture Mechanics,2000,67(5): 397-419.
    [25]
    Ukadgaonker V G, Awasare P J. A new criterion for fracture initiation[J]. Engineering Fracture Mechanics,1995,51(2): 265-274.
    [26]
    von R V Mises. Mechanik der plastischen formnderung von kristallen[J]. Zeitschrift für angewandte Mathematik und Mechanik,1928,8(3): 161-185.
    [27]
    蒲思洪, 温彤, 吴维, 等. 韧性断裂准则与阀值选取的理论及试验研究[J]. 热加工工艺, 2009,38(3): 18-21.(PU Si-hong, WEN Tong, WU Wei, et al. Theoretical and experimental research on choosing criterion and critical value of ductile fracture[J]. Hot Working Technology,2009,38(3): 18-21.(in Chinese))
    [28]
    刘向远, 郝南海. GCr15轴承钢韧性断裂阈值研究[J]. 机械制造与自动化, 2013,42(6): 15-17.(LIU Xiang-yuan, HAO Nan-hai. Research on critical value of GCr15 ductile fracture[J]. Machine Building & Automation,2013,42(6): 15-17.(in Chinese))
    [29]
    Schllmann M, Richard H A, Kullmer G, et al. A new criterion for the prediction of crack development in multiaxially loaded structures[J]. International Journal of Fracture,2002,117(2): 129-141.
    [30]
    Richard H A, Schirmeisen N H, Eberlein A. Experimental investigations on mixed-mode-loaded cracks[J]. Medizinische Technik,1952,13(3): 630-634.
    [31]
    Pirmohammad S, Kiani A. Study on fracture behavior of HMA mixtures under mixed mode Ⅰ/Ⅲ loading[J]. Engineering Fracture Mechanics,2016,153: 80-90.
    [32]
    赵廷仕, 赵诒枢, 王元汉, 等. 复合型断裂准则的实验研究[J]. 华中工学院学报, 1985,13(1): 47-50.(ZHAO Ting-shi, ZHAO Yi-shu, WANG Yuan-han, et al. Experimental study on mixed mode fracture criterion[J]. Journal of Huazhong Industrial Institute,1985,13(1): 47-50.(in Chinese))
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