Seismic wave propagation through an in-situ stressed rock mass

被引:47
|
作者
Fan, L. F. [1 ]
Sun, H. Y. [2 ]
机构
[1] Zhejiang Univ, Dept Civil Engn, Hangzhou 310058, Zhejiang, Peoples R China
[2] Zhejiang Univ, Dept Ocean Sci & Engn, Hangzhou 310058, Zhejiang, Peoples R China
基金
中国国家自然科学基金; 高等学校博士学科点专项科研基金;
关键词
Body wave; Seismic attenuation; Energy transmission; In-situ stressed rock mass; Displacement discontinuity method; FRACTURED ROCK; DEFORMATIONAL BEHAVIOR; PARALLEL FRACTURES; INITIAL STRESS; HALF-SPACES; TRANSMISSION; JOINTS; LAYER; VELOCITIES; SINGLE;
D O I
10.1016/j.jappgeo.2015.07.002
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
This paper presents an analytical study of seismic wave propagation through an in-situ stressed rock mass. The joint deformation is assumed to satisfy the nonlinear Bandis-Barton (B-B) deformational model. The displacement discontinuity method (DDM) is introduced to take account of the effect of in-situ stress. The amplitude- and frequency-dependence of seismic wave propagation through an in-situ stressed rock mass are analyzed. The effects of in-situ stress on seismic attenuation, energy transmission and effective seismic velocity are discussed. The results show that seismic attenuation, energy transmission and effective seismic velocity are influenced by seismic wave amplitude and frequency, and in-situ stress. Moreover, the amplitude- and frequency-dependence of a seismic wave obtained by conventional DDM are special cases when in-situ stress is not considered. The effect of in-situ stress on seismic attenuation, energy transmission and effective seismic velocity can be neglected when either the amplitude or the frequency is sufficiently large. When the frequency is sufficiently small, the effect of in-situ stress on seismic attenuation and energy transmission can also be neglected, but its effect on the effective seismic velocity cannot be ignored. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:13 / 20
页数:8
相关论文
共 50 条
  • [41] In-situ characterization of wave velocity in ice cover with seismic observation on guided wave
    Gao, Jiahui
    Zhang, Yuxiang
    Ma, Dingyi
    Xie, Zhinan
    Wang, Anliang
    Zhang, Haonan
    COLD REGIONS SCIENCE AND TECHNOLOGY, 2025, 231
  • [42] Analysis of Wave Propagation Through a Filled Rock Joint
    Jianchun Li
    Guowei Ma
    Xin Huang
    Rock Mechanics and Rock Engineering, 2010, 43 : 789 - 798
  • [43] Analysis of Wave Propagation Through a Filled Rock Joint
    Li, Jianchun
    Ma, Guowei
    Huang, Xin
    ROCK MECHANICS AND ROCK ENGINEERING, 2010, 43 (06) : 789 - 798
  • [44] Wave propagation in stressed composites
    Degtyar, AD
    Huang, W
    Rokhlin, SI
    REVIEW OF PROGRESS IN QUANTITATIVE NONDESTRUCTIVE EVALUATION, VOLS 15A AND 15B, 1996, 15 : 1669 - 1676
  • [45] Wave propagation in stressed composites
    Degtyar, AD
    Huang, W
    Rokhlin, SI
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1998, 104 (04): : 2192 - 2199
  • [46] In situ instrumentation and monitoring of the deformation of a tunnel in a highly stressed hard rock mass
    Sevume, C
    NINTH INTERNATIONAL CONGRESS ON ROCK MECHANICS, VOLS 1 & 2, 1999, : 1429 - 1434
  • [47] Effects of in-situ mining of oil shale on rock mass structure
    Jiang, Xue
    Liang, Xiu-Juan
    Wei, Run-Chu
    Xiao, Chang-Lai
    Dongbei Daxue Xuebao/Journal of Northeastern University, 2014, 35 (03): : 452 - 456
  • [48] In-situ deformation observation of rock mass and foundation and stability evaluation
    Zhang, Hongxu
    Zhao, Yinghai
    Gou, Bo
    Yanshilixue Yu Gongcheng Xuebao/Chinese Journal of Rock Mechanics and Engineering, 2004, 23 (23): : 3959 - 3963
  • [49] In-situ investigation on dissipative structuring in course of rock mass deformation
    Balek, AY
    ROCK MECHANICS: A CHALLENGE FOR SOCIETY, 2001, : 807 - 812
  • [50] Development of triaxial rheological testing equipment for in-situ rock mass
    Liu Quan-sheng
    Luo Ci-you
    Chen Zi-you
    Liu He
    Sang Hao-min
    Wang Wen-kai
    ROCK AND SOIL MECHANICS, 2018, 39 (39) : 473 - 479