Static and Dynamic Flexural Strength Anisotropy of Barre Granite

被引:0
|
作者
F. Dai
K. Xia
J. P. Zuo
R. Zhang
N. W. Xu
机构
[1] College of Water Resources and Hydropower,State Key Laboratory of Hydraulics and Mountain River Engineering
[2] Sichuan University,Department of Civil Engineering
[3] University of Toronto,School of Mechanics and Civil Engineering
[4] China University of Mining and Technology,undefined
来源
关键词
Barre granite; Flexural tensile strength; Anisotropy; Semi-circular bend; SHPB;
D O I
暂无
中图分类号
学科分类号
摘要
Granite exhibits anisotropy due to pre-existing microcracks under tectonic loadings; and the mechanical property anisotropy such as flexural/tensile strength is vital to many rock engineering applications. In this paper, Barre Granite is studied to understand the flexural strength anisotropy under a wide range of loading rates using newly proposed semi-circular bend tests. Static tests are conducted with a MTS hydraulic servo-control testing machine and dynamic tests with a split Hopkinson pressure bar (SHPB) system. Six samples groups are fabricated with respect to the three principle directions of Barre granite. Pulse shaping technique is used in all dynamic SHPB tests to facilitate dynamic stress equilibrium. Finite element method is utilized to build up equations calculating the flexural tensile strength. For samples in the same orientation group, a loading rate dependence of the flexural tensile strength is observed. The measured flexural tensile strength is higher than the tensile strength measured using Brazilian disc method at given loading rate and this scenario has been rationalized using a non-local failure theory. The flexural tensile strength anisotropy features obvious dependence on the loading rates, the higher the loading rate, the less the anisotropy and this phenomenon may be explained considering the interaction of the preferentially oriented microcracks.
引用
收藏
页码:1589 / 1602
页数:13
相关论文
共 50 条
  • [21] Determination of Dynamic Flexural Tensile Strength of Thermally Treated Laurentian Granite Using Semi-Circular Specimens
    Yin, Tubing
    Wang, Pin
    Li, Xibing
    Wu, Bangbiao
    Tao, Ming
    Shu, Ronghua
    ROCK MECHANICS AND ROCK ENGINEERING, 2016, 49 (10) : 3887 - 3898
  • [22] Determination of Dynamic Flexural Tensile Strength of Thermally Treated Laurentian Granite Using Semi-Circular Specimens
    Tubing Yin
    Pin Wang
    Xibing Li
    Bangbiao Wu
    Ming Tao
    Ronghua Shu
    Rock Mechanics and Rock Engineering, 2016, 49 : 3887 - 3898
  • [23] Effect of Flexural Static Load on the strength of GFRP gratings
    Izzuddin, Amir
    Akbar, Ibrisam
    STRUCTURAL, ENVIRONMENTAL, COASTAL AND OFFSHORE ENGINEERING, 2014, 567 : 387 - 392
  • [24] Anisotropy of strength and deformation of Inada granite under uniaxial tension
    Kochi Institute for Core Sample Research, Japan Agency for Marine-Earth Science and Technology, Nankoku 783-8502, Japan
    不详
    不详
    Yanshilixue Yu Gongcheng Xuebao, 2008, 12 (2463-2472):
  • [25] Dynamic and static strength in electronics
    Royman, V.
    Proceedings of the 6th International Conference Vibroengineering 2006, 2006, : 131 - 134
  • [26] Static/dynamic behavior of concrete and granite with induced damage
    Gomez, J
    Shukla, A
    PROCEEDINGS OF THE SEM IX INTERNATIONAL CONGRESS ON EXPERIMENTAL MECHANICS, 2000, : 245 - 248
  • [27] Static and dynamic behavior of concrete and granite in tension with damage
    Gomez, JT
    Shukla, A
    Sharma, A
    THEORETICAL AND APPLIED FRACTURE MECHANICS, 2001, 36 (01) : 37 - 49
  • [28] Static and dynamic behavior of damaged concrete and granite in compression
    Gomez, JT
    Shukla, A
    JOURNAL OF TESTING AND EVALUATION, 2001, 29 (06) : 563 - 569
  • [29] Dynamic Brazilian Tests of Granite Under Coupled Static and Dynamic Loads
    Zhou, Zilong
    Li, Xibing
    Zou, Yang
    Jiang, Yihui
    Li, Guonan
    ROCK MECHANICS AND ROCK ENGINEERING, 2014, 47 (02) : 495 - 505
  • [30] Dynamic Brazilian Tests of Granite Under Coupled Static and Dynamic Loads
    Zilong Zhou
    Xibing Li
    Yang Zou
    Yihui Jiang
    Guonan Li
    Rock Mechanics and Rock Engineering, 2014, 47 : 495 - 505