An experimental and numerical study of the microstructural parameters contributing to the seismic anisotropy of rocks

被引:14
|
作者
Wendt, AS
Bayuk, IO
Covey-Crump, SJ
Wirth, R
Lloyd, GE
机构
[1] UCL, Rock & Ice Phys Lab, Dept Earth & Planetary Sci, London, England
[2] Univ Montpellier 2, Lab Geophys Tecton & Sedimentol, Montpellier, France
[3] Russian Acad Sci, Lab Ordered Media, United Inst Phys Earth, Moscow 123810, Russia
[4] Univ Manchester, Dept Earth Sci, Manchester M13 9PL, Lancs, England
[5] Geoforschungszentrum Potsdam, Projektbereich 4 1, D-14407 Potsdam, Germany
[6] Univ Leeds, Sch Earth Sci, Leeds LS2 9JT, W Yorkshire, England
关键词
elastic rock properties; microstructures; seismic velocity anisotropy; Ponte Castaneda and Willis method;
D O I
10.1029/2002JB001915
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The elastic properties of rocks are influenced by several microstructural variables, including the lattice preferred orientation and grain shape fabric of the mineral phases, variations in the spatial distribution of the mineral phases, the properties of the grain boundaries, and the presence of porosity/fractures. Consequently, in principle, directional variations in these variables can be inferred from seismic velocity anisotropy observations. Experimental seismic velocity measurements made on rocks of well-characterized microstructure may be used to improve the quality of such inferences. However, since most rocks are microstructurally complex, in order to interpret the measurements fully, theoretical analyses which can accommodate all the relevant microstructural variables are required. Theoretical analyses of the requisite sophistication have only recently been developed. We have tested one of these (due to Ponte Castaneda and Willis) by using it to calculate the elastic properties of an upper mantle harzburgite and by then comparing the results with experimental velocity measurements to determine if the values of those microstructural variables which are difficult to quantify (grain boundary properties, fracture shape) are physically realistic. We find that they are and conclude that the Ponte Castaneda and Willis analysis provides a powerful method for a more detailed assessment of the causes of elastic property anistropy in rocks than has previously been possible.
引用
收藏
页数:18
相关论文
共 50 条
  • [21] Experimental study on seismic stability of foundation rocks under critical facilities
    Ishimaru, M.
    Sekiguchi, A.
    Okada, T.
    Hiraga, K.
    Ozawa, K.
    ROCK DYNAMICS - EXPERIMENTS, THEORIES AND APPLICATIONS, 2018, : 569 - 574
  • [22] Fluid-dependent anisotropy and experimental measurements in synthetic porous rocks with controlled fracture parameters
    Ding, Pinbo
    Di, Bangrang
    Wei, Jianxin
    Li, Xiangyang
    Deng, Yinghua
    JOURNAL OF GEOPHYSICS AND ENGINEERING, 2014, 11 (01)
  • [23] Micro-crack enhanced permeability in tight rocks: An experimental and microstructural study
    Delle Piane, Claudio
    Arena, Alessio
    Sarout, Joel
    Esteban, Lionel
    Cazes, Emilie
    TECTONOPHYSICS, 2015, 665 : 149 - 156
  • [24] Theoretical, numerical and experimental study of geometrical parameters that affect anisotropy measurements in polarization-resolved SHG microscopy
    Teulon, Claire
    Gusachenko, Ivan
    Latour, Gael
    Schanne-Klein, Marie-Claire
    OPTICS EXPRESS, 2015, 23 (07): : 9313 - 9328
  • [25] MICROCRACK-INDUCED SEISMIC ANISOTROPY OF SEDIMENTARY-ROCKS
    SAYERS, CM
    VANMUNSTER, JG
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1991, 96 (B10) : 16529 - 16533
  • [26] Processing microseismic monitoring data, considering seismic anisotropy of rocks
    S. V. Yaskevich
    V. Yu. Grechka
    A. A. Duchkov
    Journal of Mining Science, 2015, 51 : 477 - 486
  • [27] Experimental and Numerical Study of Quasi-Brittle Fracture of Rocks
    Kostandov, Yu. A.
    Makarov, P. V.
    Eremin, M. O.
    INTERNATIONAL CONFERENCE ON PHYSICAL MESOMECHANICS OF MULTILEVEL SYSTEMS 2014, 2014, 1623 : 303 - 306
  • [28] Seismic anisotropy in sedimentary rocks, part 2: Laboratory data
    Wang, ZJ
    GEOPHYSICS, 2002, 67 (05) : 1423 - 1440
  • [29] Processing Microseismic Monitoring Data, Considering Seismic Anisotropy of Rocks
    Yaskevich, S. V.
    Grechka, V. Yu.
    Duchkov, A. A.
    JOURNAL OF MINING SCIENCE, 2015, 51 (03) : 477 - 486
  • [30] Analysis of seismic anisotropy parameters for sedimentary strata
    Yan, Fuyong
    Han, De-Hua
    Sil, Samik
    Chen, Xue-Lian
    GEOPHYSICS, 2016, 81 (05) : D495 - D502