Specific application method for determining the strength and fracture toughness of metal materials

被引:4
|
作者
Hao, Ying [1 ]
Meng, Wei [1 ]
Guan, Junfeng [1 ]
Yao, Xianhua [1 ]
Li, Lielie [1 ]
机构
[1] North China Univ Water Resources & Elect Power, Sch Civil Engn & Commun, Zhengzhou 450045, Peoples R China
基金
中国国家自然科学基金;
关键词
Elastic -plastic fracture model; Application method; Yield strength; Fracture toughness; STRESS DUCTILE FRACTURE; R-CURVE BEHAVIOR; CRACK-TIP; ESSENTIAL WORK; PART I; STRAIN; SIZE; INITIATION; GROWTH; ZONE;
D O I
10.1016/j.tafmec.2023.103822
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The elastic-plastic fracture of metal components with cracks is an interesting structural behavior because of the sizable crack-tip plastic zone and its strong interactions with the structural boundaries and load conditions. These complex interactions lead to constant elastic-plastic fracture phenomenon that does not exist normally. Currently, there are several restrictions, such as specific height, thickness, initial crack length, loading fixture, and loading method, on the test specimens to determine the fracture toughness of metal materials. Considering the plastic zone at the crack tip, it is proposed that the elastic-plastic fracture phenomenon of metals can be predicted entirely by two basic material properties, tensile yield strength and fracture toughness. A 40 mm wide plate is used to test ordinary carbon steel Q235B, low alloy carbon steel Q345B and aluminum alloy 6061 under tension. The initial cracks introduced through wire-cutting were 4, 8, 12, 16, 20, 24, and 28 mm in dimensions with the initial notch length to the width ratios of 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, and 0.7. Based on the elastic-plastic fracture model, the specific application method for determining the strength and fracture toughness of metal materials was realized, and the complete failure curves of three metal materials were determined. A cru-cial link between the structural behavior and material parameters of metal materials was established, which can predict the yield load of actual large-scale metal structures based on the elastic-plastic fracture model.
引用
收藏
页数:17
相关论文
共 50 条
  • [21] A method to determine site-specific, anisotropic fracture toughness in biological materials
    Bechtle, Sabine
    Oezcoban, Hueseyin
    Yilmaz, Ezgi D.
    Fett, Theo
    Rizzi, Gabriele
    Lilleodden, Erica T.
    Huber, Norbert
    Schreyer, Andreas
    Swain, Michael V.
    Schneider, Gerold A.
    SCRIPTA MATERIALIA, 2012, 66 (08) : 515 - 518
  • [22] Application of Normalization Method to Fracture Toughness Testing of Welds with Pronounced Strength Heterogeneity
    Stefane, Primoz
    ProQuest Dissertations and Theses Global, 2023,
  • [23] The fracture extreme theory for determining the effective fracture toughness and tensile strength of concrete
    Qing, Longbang
    Cheng, Yuehua
    THEORETICAL AND APPLIED FRACTURE MECHANICS, 2018, 96 : 461 - 467
  • [24] Strength and fracture toughness of hot pressed SiC materials
    Cho, K.
    Katz, R.N.
    Ceramic Engineering and Science Proceedings, 1995, 16 (04): : 105 - 112
  • [25] EVALUATION OF COMPACT TENSION SPECIMEN FOR DETERMINING PLANE STRAIN FRACTURE TOUGHNESS OF HIGH-STRENGTH MATERIALS
    MCCABE, DE
    JOURNAL OF MATERIALS, 1972, 7 (04): : 449 - 454
  • [26] Suggested methods for determining the dynamic strength parameters and mode-I fracture toughness of rock materials
    Zhou, Y. X.
    Xia, K.
    Li, X. B.
    Li, H. B.
    Ma, G. W.
    Zhao, J.
    Zhou, Z. L.
    Dai, F.
    INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2012, 49 : 105 - 112
  • [27] THE DEVELOPMENT OF FRACTURE-TOUGHNESS AND FRACTURE STRENGTH IN POSTERIOR RESTORATIVE MATERIALS
    LLOYD, CH
    ADAMSON, M
    DENTAL MATERIALS, 1987, 3 (05) : 225 - 231
  • [28] METHODS FOR DETERMINING FRACTURE-TOUGHNESS OF BRITTLE POROUS MATERIALS
    SHIRYAEV, AM
    KOTKIS, AM
    INDUSTRIAL LABORATORY, 1982, 48 (09): : 917 - 918
  • [29] A modified normalization method for determining fracture toughness of steel
    Gao, Hui
    Wang, Weigang
    Wang, Yanlin
    Zhang, Bohua
    Li, Chun-Qing
    FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2021, 44 (02) : 568 - 583