Search

Article

x

留言板

姓名
邮箱
手机号码
标题
留言内容
验证码

downloadPDF
Citation:

Lu Kun-Quan, Cao Ze-Xian, Hou Mei-Ying, Jiang Ze-Hui, Shen Rong, Wang Qiang, Sun Gang, Liu Ji-Xing
PDF
Get Citation

  • The physical mechanism of earthquake remains a challenging issue to be clarified. Seismologists used to attribute shallow earthquake to the elastic rebound of crustal rocks. The seismic energy calculated following the elastic rebound theory and on the basis of experimental results of rocks, however, shows a large discrepancy with measurementa fact that has been dubbed the heat flow paradox. For the intermediate-focus and deep-focus earthquakes, both occurring in the region of the mantle, there is not any reasonable explanation yet. The current article will discuss the physical mechanism of earthquake from a new perspective, starting from the fact that both the crust and the mantle are discrete collective systems of matters with slow dynamics, as well as from the basic principles of physics, especially some new concepts of condensed matter physics emerging in recent years. 1. Strss distribution in earth's crust: Without taking the tectonic force into account, according to the rheological principle that everything flows, the vertical and the horizontal strsses must be in balance due to the effect of gravitational pressure over a long period of time, thus no differential strss in the original crustal rocks is to be expected. The tectonic force is successively transferred and accumulated via stick-slip motions of rocky blocks to squeeze the fault gouges, and then applied to other rocky blocks. The superposition of such additional horizontal tectonic force and the original strss gives rise to the real-time strss in crustal rocks. The mechanical characteristics of fault gouge are different from rocks as it consists of granular matters. Thus the elastic modulus of the fault gouge is much lower than that of rocks, and will become larger with increasing pressure. This character of the fault gouge leads to a tectonic force that increases with depth in a nonlinear fashion. The distribution and variation of tectonic strss in the crust are then specified. 2. Strength of crust rocks: The gravitational pressure can initiate the transition from elasticity to plasticity in crust rocks. A method for calculating the depth dependence of elasticity-plasticity transition is formulated, and demonstrated by exemplar systems. According to the actual situation analysis the behaviors of crust rocks fall into three typical zones: elastic, partially plastic and fully plastic. As the proportion of plastic parts in the partially plastic zone reaches about 10%, plastic interconnection may occur and the variation of shear strength of rocks is mainly characterized by plastic behavior. The equivalent coefficient of friction for the plastic slip is smaller by an order of magnitude, or even less, than that for brittle fracture, thus the shear strength of the rocks for plastic sliding is much less than that for brittle breaking. Moreover, with increasing depth a number of other factors can further reduce the shear yield strength of rocks. On the other hand, since earthquake is a large-scale damage, the rock breaking must occur along a weakest path. Therefore, the actual fracture strength of rocks in a shallow earthquake is assuredly lower than the normally observed average shear strength of rocks. The typical distributions of averaged strength and actual fracture strength in crustal rocks varying with depth are schematically illustrated in the paper. 3. Conditions and mechanisms of earthquake: An earthquake will lead to large volume expansion, and the expansion must break through the obstacles. The condition for an earthquake to occur may be as follows: the tectonic force should exceed the sum of (a) the fracture strength of rocks, (b) the friction force of fault boundary, and (c) the resistance from obstacles. Therefore, the shallow earthquake is characterized by plastic sliding of rocks that break through the obstacles. Accordingly, four possible patterns for shallow earthquakes are put forward. Deep-focus earthquakes are believed to result from a wide-range rock flow that breaks the jam. Both shallow earthquakes and deep-focus earthquakes are the slip or flow of rocks following a jamming-unjamming transition. 4. Energetics and precursors of earthquake: The energy of earthquake is the kinetic energy released from the jamming-unjamming transition. Calculation shows that the kinetic energy of seismic rock sliding is comparable to the total work for rocks' shear failure and for overcoming the frictional resistance. There will be no heat flow paradox. More importantly, some valuable seismic precursors are likely to be identified by observing the accumulation of additional tectonic forces, local geological changes, as well as the effect of rock state changes, etc.
      • Funds:Project supported by the Knowledge Innovation Project of the Chinese Academy of Sciences (Grant Nos. KJCX2-SW-W15, KKCX1-YW-03), the National Natural Science Foundation of China (Grant Nos. 10374111, 11274354, 11034010), and the Special Fundfor Earthquake Research from China Seismological Bureau (Grant No. 201208011).
      [1]

      [2]

      [3]
      [4]

      [5]
      [6]

      [7]
      [8]
      [9]

      [10]

      [11]
      [12]
      [13]

      [14]
      [15]

      [16]

      [17]
      [18]

      [19]
      [20]
      [21]

      [22]
      [23]

      [24]

      [25]
      [26]
      [27]

      [28]

      [29]
      [30]
      [31]

      [32]

      [33]
      [34]
      [35]

      [36]
      [37]

      [38]
      [39]

      [40]
      [41]

      [42]
      [43]

      [44]
      [45]

      [46]

      [47]
      [48]

      [49]
      [50]

      [51]
      [52]
      [53]

      [54]

      [55]
      [56]

      [57]
      [58]

      [59]
      [60]
      [61]

      [62]
      [63]

      [64]

      [65]
      [66]

      [67]
      [68]

      [69]
      [70]
      [71]

      [72]

      [73]
      [74]
      [75]

      [76]
      [77]

      [78]
      [79]

      [80]

      [81]
      [82]

      [83]
      [84]
      [85]

      [86]

      [87]
      [88]

      [89]
      [90]
      [91]

      [92]

      [93]
      [94]
      [95]

      [96]
      [97]

      [98]
      [99]

      [100]
      [101]

      [102]

      [103]
      [104]

      [105]
      [106]

      [107]
      [108]
      [109]

      [110]

      [111]
      [112]

      [113]
      [114]
      [115]

      [116]

      [117]
      [118]

      [119]
      [120]
      [121]

      [122]
      [123]

      [124]
      [125]

      [126]

      [127]
      [128]
      [129]

      [130]
      [131]

      [132]

      [133]
      [134]

      [135]
      [136]
      [137]

      [138]
      [139]

      [140]
      [141]

      [142]
      [143]

      [144]

      [145]
      [146]

      [147]
      [148]

      [149]
      [150]
      [151]

      [152]
      [153]

      [154]

      [155]
      [156]

      [157]
      [158]

      [159]
      [160]

      [161]
      [162]

      [163]
      [164]

      [165]
      [166]

      [167]
      [168]
      [169]

      [170]

      [171]
      [172]

      [173]
      [174]

      [175]
      [176]

      [177]
      [178]

      [179]
      [180]

      [181]
      [182]
      [183]

      [184]

      [185]
      [186]

      [187]
      [188]
      [189]

      [190]

      [191]
      [192]

      [193]
      [194]
      [195]

      [196]
      [197]

      [198]

      [199]
      [200]

      [201]
      [202]
      [203]

      [204]
      [205]

      [206]

      [207]
      [208]
      [209]

      [210]

      [211]
      [212]
      [213]

      [214]
      [215]

      [216]

      [217]
      [218]
      [219]

      [220]

      [221]
      [222]
      [223]

      [224]

      [225]
      [226]

      [227]
      [228]

      [229]
      [230]

      [231]
      [232]

      [233]
      [234]

      [235]
      [236]

      [237]
      [238]
      [239]

      [240]
      [241]

      [242]
      [243]

      [244]

      [245]
      [246]

      [247]
    • [1]

      [2]

      [3]
      [4]

      [5]
      [6]

      [7]
      [8]
      [9]

      [10]

      [11]
      [12]
      [13]

      [14]
      [15]

      [16]

      [17]
      [18]

      [19]
      [20]
      [21]

      [22]
      [23]

      [24]

      [25]
      [26]
      [27]

      [28]

      [29]
      [30]
      [31]

      [32]

      [33]
      [34]
      [35]

      [36]
      [37]

      [38]
      [39]

      [40]
      [41]

      [42]
      [43]

      [44]
      [45]

      [46]

      [47]
      [48]

      [49]
      [50]

      [51]
      [52]
      [53]

      [54]

      [55]
      [56]

      [57]
      [58]

      [59]
      [60]
      [61]

      [62]
      [63]

      [64]

      [65]
      [66]

      [67]
      [68]

      [69]
      [70]
      [71]

      [72]

      [73]
      [74]
      [75]

      [76]
      [77]

      [78]
      [79]

      [80]

      [81]
      [82]

      [83]
      [84]
      [85]

      [86]

      [87]
      [88]

      [89]
      [90]
      [91]

      [92]

      [93]
      [94]
      [95]

      [96]
      [97]

      [98]
      [99]

      [100]
      [101]

      [102]

      [103]
      [104]

      [105]
      [106]

      [107]
      [108]
      [109]

      [110]

      [111]
      [112]

      [113]
      [114]
      [115]

      [116]

      [117]
      [118]

      [119]
      [120]
      [121]

      [122]
      [123]

      [124]
      [125]

      [126]

      [127]
      [128]
      [129]

      [130]
      [131]

      [132]

      [133]
      [134]

      [135]
      [136]
      [137]

      [138]
      [139]

      [140]
      [141]

      [142]
      [143]

      [144]

      [145]
      [146]

      [147]
      [148]

      [149]
      [150]
      [151]

      [152]
      [153]

      [154]

      [155]
      [156]

      [157]
      [158]

      [159]
      [160]

      [161]
      [162]

      [163]
      [164]

      [165]
      [166]

      [167]
      [168]
      [169]

      [170]

      [171]
      [172]

      [173]
      [174]

      [175]
      [176]

      [177]
      [178]

      [179]
      [180]

      [181]
      [182]
      [183]

      [184]

      [185]
      [186]

      [187]
      [188]
      [189]

      [190]

      [191]
      [192]

      [193]
      [194]
      [195]

      [196]
      [197]

      [198]

      [199]
      [200]

      [201]
      [202]
      [203]

      [204]
      [205]

      [206]

      [207]
      [208]
      [209]

      [210]

      [211]
      [212]
      [213]

      [214]
      [215]

      [216]

      [217]
      [218]
      [219]

      [220]

      [221]
      [222]
      [223]

      [224]

      [225]
      [226]

      [227]
      [228]

      [229]
      [230]

      [231]
      [232]

      [233]
      [234]

      [235]
      [236]

      [237]
      [238]
      [239]

      [240]
      [241]

      [242]
      [243]

      [244]

      [245]
      [246]

      [247]
    • [1] Li Wei-Jian, Zhou Xiao-Yan, Lu Hang-Jun.Abnormal blockage of water flow in valveless nanopumps. Acta Physica Sinica, 2024, 73(9): 094702.doi:10.7498/aps.73.20240115
      [2] Duan Ya-Juan, Qiao Ji-Chao.Dynamic relaxation characteristics and stress relaxation behavior of Pd-basedmetallic glass. Acta Physica Sinica, 2022, 71(8): 086101.doi:10.7498/aps.71.20212025
      [3] Guo Chun-Xiang, Jiao Zhi-Hong, Zhou Xiao-Xin, Li Peng-Cheng.Mechanism of laser intensity-dependent below-threshold harmonic generation. Acta Physica Sinica, 2020, 69(7): 074203.doi:10.7498/aps.69.20191883
      [4] Liu Jin, Miao Bo, Jia Xin-Yan, Fan Dai-He.Testing quantum nonlocality with high probability using quantum mixed state based on hardy-type paradox. Acta Physica Sinica, 2019, 68(23): 230302.doi:10.7498/aps.68.20191125
      [5] Ma Li-Dong, Yang Guang-Hui, Zhang Sheng, Lin Ping, Tian Yuan, Yang Lei.Numerical experiment studies of clogging during the discharge of granular matter in a three-dimensional hopper. Acta Physica Sinica, 2018, 67(4): 044501.doi:10.7498/aps.67.20171813
      [6] Feng Lei, Jiang Gang.2000 eV X-ray laser transparent mechanism of neon atom. Acta Physica Sinica, 2017, 66(15): 153201.doi:10.7498/aps.66.153201
      [7] Zhang Wei, Hu Lin, Zhang Xing-Gang.Structural features of critical jammed state in bi-disperse granular systems. Acta Physica Sinica, 2016, 65(2): 024502.doi:10.7498/aps.65.024502
      [8] Lu Kun-Quan, Hou Mei-Ying, Jiang Ze-Hui, Wang Qiang, Sun Gang, Liu Ji-Xing.To understand earthquake from the granular physics point of viewcauses of earthquakes, earthquake precursors and prediction. Acta Physica Sinica, 2012, 61(11): 119103.doi:10.7498/aps.61.119103
      [9] Han Hai-Ying, Naranmandula, Shuang Shan.Evolution of nonlinear seismic waves in microstructured earth crust. Acta Physica Sinica, 2012, 61(5): 059101.doi:10.7498/aps.61.059101
      [10] Zhang Guo-Hua, Sun Qi-Cheng, Huang Fang-Fang, Jin Feng.Jamming phenomena of a two-dimensional frictional granular system under isotropic confining. Acta Physica Sinica, 2011, 60(12): 124502.doi:10.7498/aps.60.124502
      [11] Tian Jing, Qiu Hai-Bo, Chen Yong.Mechanism of measure synchronization in coupled Hamiltonian systems. Acta Physica Sinica, 2010, 59(6): 3763-3768.doi:10.7498/aps.59.3763
      [12] He Hai-Lun, Liu Yong-Jun, Mo Jun, Song Jin-Bao.Wave generation by the falling rock in the two-dimensional wave tank. Acta Physica Sinica, 2009, 58(10): 6743-6749.doi:10.7498/aps.58.6743
      [13] Deng Min-Yi, Shi Juan, Li Hua-Bing, Kong Ling-Jiang, Liu Mu-Ren.Lattice Boltzmann method for the production and evolution of spiral waves. Acta Physica Sinica, 2007, 56(4): 2012-2017.doi:10.7498/aps.56.2012
      [14] Zhao Chao-Ying, Tan Wei-Han.Optimum realization of the EPR paradox in the non-degenerate parametric amplification system. Acta Physica Sinica, 2006, 55(1): 19-23.doi:10.7498/aps.55.19
      [15] Gu Pei-Fu, Zheng Zhen-Rong, Zhao Yong-Jiang, Liu Xu.Study on the mechanism and measurement of stress of TiO2 and SiO2 thin-films. Acta Physica Sinica, 2006, 55(12): 6459-6463.doi:10.7498/aps.55.6459
      [16] Jian Ya-Qing, Yan Pei-Guang, Lü Ke-Cheng, Zhang Tie-Qun, Zhu Xiao-Nong.Experimental study and numerical analysis of femtosecond pulse propagation and supercontinuum generation in highly nonlinear photonic crystal fiber. Acta Physica Sinica, 2006, 55(4): 1809-1814.doi:10.7498/aps.55.1809
      [17] Ding Ying-Tao, He Feng, Yao Zhao-Hui, Shen Meng-Yu, Wang Xue-Fang.Sub-choking phenomenon of low-speed gas flow in a long-constant-area microchannel. Acta Physica Sinica, 2004, 53(8): 2429-2433.doi:10.7498/aps.53.2429
      [18] DU YING-LEI, WU BAI-MEI.A STUDY ON THERMAL PROPERTIES FOR ZrO2 COATINGS BY ARC PHOTOTHERMAL TECHNIQUE AND FINITE-DIFFERENCE THERMAL FLOW MODEL. Acta Physica Sinica, 1994, 43(11): 1821-1827.doi:10.7498/aps.43.1821
      [19] WEI CHENG-LIAN, DONG YU-LAN, GAO ZHI-WEI.A NEW PHENOMENON ABOUT THE {111} PLANAR PARTICLES BLOCKING DIP IN SINGLE CRYSTAL Si. Acta Physica Sinica, 1980, 29(9): 1222-1225.doi:10.7498/aps.29.1222
      [20] CHEN CHANG, WEI CHENG-LIAN, DONG YU-LAIN, LIU SHI-JIE, XIA GUANG-CHANG, FAN JING-YUN, WANG QI-LIANG, GAO ZHI-WEI.THE BLOCKING EFFECT OF Si, GaAs AND LiNbO3SINGLE CRYSTALS. Acta Physica Sinica, 1979, 28(3): 324-333.doi:10.7498/aps.28.324
    Metrics
    • Abstract views:8366
    • PDF Downloads:941
    • Cited By:0
    Publishing process
    • Received Date:01 September 2014
    • Accepted Date:01 September 2014
    • Published Online:05 November 2014

      返回文章
      返回
        Baidu
        map