Analysis of triaxial compression deformation and strength characteristics of limestone after high temperature

被引:0
|
作者
Qing-bin Meng
Wei Qian
Jiang-feng Liu
Ming-wei Zhang
Meng-meng Lu
Yu Wu
机构
[1] China University of Mining and Technology,State Key Laboratory for Geomechanics and Deep Underground Engineering, School of Mechanics and Civil Engineering
[2] Southwest Petroleum University,The State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation
来源
关键词
High-temperature rock; Strength and deformation characteristics; Triaxial compression testing; Brittleness and ductility; Failure form;
D O I
暂无
中图分类号
学科分类号
摘要
Understanding the mechanical behavior of rock under conditions of high temperature and pressure is critical when it comes to implementing underground coal gasification, deep disposal of highly radioactive nuclear waste, development and utilization of deep underground space, development and utilization of geothermal resources, etc. To understand the effect of confining pressure on limestone at high temperature, uniaxial and triaxial compression testing was conducted on limestone under high temperature (20–800 °C) using the MTS 815 rock mechanics testing system. Using this system, the change in the strength and deformation parameters of the limestone at varying temperature and confining pressure conditions were studied. The results show that the triaxial compression stress-strain curve of limestone at high temperatures is divided into five stages: compaction stage, elastic stage, plastic deformation stage, post-peak failure stage, and residual stage. In addition, the rock brittleness and ductility decrease as the temperature increases. The peak stress and residual strength of the limestone at high temperatures increase as the confining pressure increases, and the strength of the rock specimens decreases as the temperature increases. The internal friction angle (φ) first increases and then decreases as the temperature increases, but the relationship of the cohesive force (c) to temperature is opposite that of φ, indicating that the shear strength of limestone at high temperatures is determined by both c and φ. The elastic modulus of limestone at high temperatures increases with the increase in confining pressure and decreases as the temperature increases, and the peak strain of limestone at high temperatures increases as the confining pressure and temperature increase. The effect of temperature on the failure of limestone is not obvious, and the failure of rock specimens during uniaxial compression testing was mostly through axial splitting, while the failure of rock specimens under triaxial compression testing was mostly through shear failure. As the confining pressure increases, the fracture type of the rock specimens gradually changes from brittle tensile fracture to shear fracture, and the instability type of the rock specimen changed from the sudden instability type to the progressive failure type. Our research results are especially useful in areas where engineering is performed on rocks under high temperature.
引用
收藏
相关论文
共 50 条
  • [21] Strength and Deformation Properties of High Performance Lightweight Concrete Under True Triaxial Compression
    Wang H.
    Xie B.
    Yingyong Jichu yu Gongcheng Kexue Xuebao/Journal of Basic Science and Engineering, 2021, 29 (02): : 308 - 323
  • [22] Experimental Investigation on the Deformation, Strength, and Acoustic Emission Characteristics of Sandstone under True Triaxial Compression
    Li, Zhaolin
    Wang, Lianguo
    Lu, Yinlong
    Li, Wenshuai
    Wang, Kai
    ADVANCES IN MATERIALS SCIENCE AND ENGINEERING, 2018, 2018
  • [23] Strength and deformation of recycled aggregate concrete under triaxial compression
    Deng, Zhiheng
    Wang, Yumei
    Sheng, Jun
    Hu, Xu
    CONSTRUCTION AND BUILDING MATERIALS, 2017, 156 : 1043 - 1052
  • [24] Triaxial Compression Test Characteristics of Limestone from Gunung Lang, Malaysia
    Goh, T. L.
    Serasa, A. S.
    Rafek, A. G.
    Abd Kadir, A.
    Simon, N.
    Surip, N.
    Hussin, A.
    Lee, K. E.
    ICIPEG 2016: PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON INTEGRATED PETROLEUM ENGINEERING AND GEOSCIENCES, 2017, : 431 - 439
  • [25] Temperature effect on strength of ice under triaxial compression
    Fish, AM
    Zaretsky, YK
    PROCEEDINGS OF THE SEVENTH (1997) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL II, 1997, 1997, : 415 - 422
  • [26] Ageing and viscous effects on the deformation and strength characteristics of cement-mixed gravelly soil in triaxial compression
    Kongsukprasert, L
    Tatsuoka, F
    SOILS AND FOUNDATIONS, 2005, 45 (06) : 55 - 74
  • [27] Strength and deformation characteristics of cement-mixed gravelly soil in multiple-step triaxial compression
    Taheri, A.
    Sasaki, Y.
    Tatsuoka, F.
    Watanabe, K.
    SOILS AND FOUNDATIONS, 2012, 52 (01) : 126 - 145
  • [28] Anisotropic deformation and strength characteristics of gravels in large-scale plane strain and triaxial compression tests
    Dong, J
    Nakamura, K
    PROCEEDINGS OF THE FOURTEENTH INTERNATIONAL CONFERENCE ON SOIL MECHANICS AND FOUNDATION ENGINEERING, VOL 1: TECHNICAL PAPERS, 1997, : 81 - 84
  • [29] Deformation characteristics of liquefied loose sand by triaxial compression tests
    Nagase, H
    Hiro-oka, A
    Yanagihata, T
    DEFORMATION AND PROGRESSIVE FAILURE IN GEOMECHANICS - IS-NAGOYA'97, 1997, : 559 - 564
  • [30] Progressive failure and fracture characteristics of coral reef limestone under triaxial compression
    Xu, Jun
    Zhang, Zixin
    Huang, Xin
    ENGINEERING FRACTURE MECHANICS, 2025, 318