Micromechanics-based continuum model for hydraulic fracturing of jointed rock masses during HDR stimulation

被引:12
|
作者
Vychytil, J [1 ]
Horii, H [1 ]
机构
[1] Univ Tokyo, Dept Civil Engn, Bunkyo Ku, Tokyo 113, Japan
关键词
D O I
10.1016/S0167-6636(97)00061-6
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this paper, the mechanical response of rock masses to high-pressure hydraulic injections applied during hot dry rock (HDR) stimulation is studied. The sliding of natural joints originated by the action of water pressure is assumed for the governing mechanism of hydrofracturing. The constitutive relationship for the mechanical behavior of jointed rock masses under hydraulic fracturing is formulated by extending the MBC (micromechanics based continuum) model which is developed for jointed rock masses under excavation. After implementing the derived relationship into a finite element analysis code, HDR stimulation problems are analyzed and a successive formation of the fractured zone and the corresponding water pressures are studied, neglecting complex time-dependent processes. Variation of the mechanical response for different geological conditions is shown by two- and three-dimensional FEM analysis. In order to verify the assumed fracturing mechanism, input parameters from two HDR test project sites are employed for analysis. Comparison of the analysis results with the data recorded during the experiments supports the assumption that sliding and associated opening of natural joints assisted by the action of water pressure is the governing mechanism of hydrofracturing during HDR stimulation. (C) 1998 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:123 / 135
页数:13
相关论文
共 50 条
  • [1] A continuum model of jointed rock masses based on micromechanics and its integration algorithm
    Zhu FuWei
    Dui GuanSuo
    Ren QingWen
    SCIENCE CHINA-TECHNOLOGICAL SCIENCES, 2011, 54 (03) : 581 - 590
  • [2] A continuum model of jointed rock masses based on micromechanics and its integration algorithm
    ZHU FuWei1
    2 Department of Civil Engineering
    Science China(Technological Sciences), 2011, (03) : 581 - 590
  • [3] A continuum model of jointed rock masses based on micromechanics and its integration algorithm
    ZHU FuWei DUI GuanSuo REN QingWen Institute of Engineering Mechanics Beijing Jiaotong University Beijing China Department of Civil Engineering Hohai University Nanjing China
    Science China(Technological Sciences), 2011, 54 (03) : 581 - 590
  • [4] A continuum model of jointed rock masses based on micromechanics and its integration algorithm
    FuWei Zhu
    GuanSuo Dui
    QingWen Ren
    Science China Technological Sciences, 2011, 54 : 581 - 590
  • [5] Micromechanics-based continuum model for a jointed rock mass and excavation analyses of a large-scale cavern
    Yoshida, H
    Horii, H
    INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2004, 41 (01) : 119 - 145
  • [6] Evaluation of the change in permeability of jointed rock mass due to excavation using Micromechanics-Based Continuum (MBC) model
    Kim, HM
    Kuwabara, M
    Inoue, J
    Horii, H
    ROCK MECHANICS IN THE NATIONAL INTEREST, VOLS 1 AND 2, 2001, : 721 - 728
  • [7] Excavation analysis of a large-scale power station cavern by micromechanics-based continuum model for jointed rock mass
    Yoshida, H
    Horii, H
    Kudo, K
    ENVIRONMENTAL AND SAFETY CONCERNS IN UNDERGROUND CONSTRUCTION, VOLS, 1 AND 2, 1997, : 311 - 316
  • [8] Investigation of Hydraulic Fracturing Behavior in Heterogeneous Laminated Rock Using a Micromechanics-Based Numerical Approach
    Zhao, Haijun
    Tannant, Dwayne D.
    Ma, Fengshan
    Guo, Jie
    Feng, Xuelei
    ENERGIES, 2019, 12 (18)
  • [9] Excavation analysis of a large-scale underground power house cavern by micromechanics-based continuum model of jointed rock mass
    Yoshida, H.
    Horii, H.
    International Journal of Rock Mechanics and Mining Sciences, 1997, 34 (3-4): : 1 - 352
  • [10] Micromechanics of hydraulic fracturing and damage in rock based on DEM modeling
    Tomac, Ingrid
    Gutierrez, Marte
    GRANULAR MATTER, 2020, 22 (03)