Are normal fault earthquakes due to elastic rebound or gravitational collapse?

被引:14
作者
Bignami, Christian [1 ]
Valerio, Emanuela [2 ]
Carminati, Eugenio [3 ]
Doglioni, Carlo [1 ,3 ]
Petricca, Patrizio [3 ]
Tizzani, Pietro [2 ]
Lanari, Riccardo [2 ]
机构
[1] Ist Nazl Geofis & Vulcanol, Rome, Italy
[2] Natl Res Council CNR, Ist Rilevamento Elettromagnet Ambiente IREA, Naples, Italy
[3] Sapienza Univ, Dipartimento Sci Terra, Rome, Italy
关键词
Normal fault earthquakes; Graviquakes; Lithostatic load; Coseismic deformation; Fluid expulsion; DEFORMATION;
D O I
10.4401/ag-8455
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
We discuss two competing models for explaining the ground deformation associated with normal faulting earthquake in the brittle elastic upper crust. The classic elastic rebound theory is usually applied for all tectonic settings. In normal fault earthquakes, this model would predict a horizontal stretching eventually responsible for the elastic rebound at the earthquake. However, volumes mostly subside vertically during an extensional earthquake and the collapsed ground in the hanging wall is about one order of magnitude larger than the uplifted volumes of the surrounding hanging wall and footwall. The elastic rebound model would explain this asymmetry with a high horizontal elastic compressibility of the hanging wall and footwall absorbing the coseismic push. We rather suggest that the force activating normal fault earthquakes is mostly dictated by the sliding of the hanging wall, owing gravitational potential. The much larger coseismic subsidence with respect to the uplift can be explained by the closure at depth of a diffuse network of microfractures developed during the interseismic period. Since the horizontal stretching does not exist below similar to 1 km of depth, with the minimum horizontal stress tensor becoming positive below that depth, the development of a normal fault can be activated only by the vertical maximum stress tensor, i.e., the lithostatic load. The common fluids expulsion at the coseismic stage requires diffuse secondary permeability in the upper crust, in agreement with the presence of a diffuse network of microfractures.
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页数:15
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共 32 条
  • [1] Effects of testing methods and conditions on the elastic properties of limestone rock
    Al-Shayea, NA
    [J]. ENGINEERING GEOLOGY, 2004, 74 (1-2) : 139 - 156
  • [2] Anderson EM., 1951, The dynamics of faulting and dyke formation with application to Britain
  • [3] Hydrogeochemical changes before and during the 2016 Amatrice-Norcia seismic sequence (central Italy)
    Barberio, Marino Domenico
    Barbieri, Maurizio
    Billi, Andrea
    Doglioni, Carlo
    Petitta, Marco
    [J]. SCIENTIFIC REPORTS, 2017, 7
  • [4] Volume unbalance on the 2016 Amatrice - Norcia (Central Italy) seismic sequence and insights on normal fault earthquake mechanism
    Bignami, Christian
    Valerio, Emanuela
    Carminati, Eugenio
    Doglioni, Carlo
    Tizzani, Pietro
    Lanari, Riccardo
    [J]. SCIENTIFIC REPORTS, 2019, 9 (1)
  • [5] Reverse migration of seismicity on thrusts and normal faults
    Carminati, E
    Doglioni, C
    Barba, S
    [J]. EARTH-SCIENCE REVIEWS, 2004, 65 (3-4) : 195 - 222
  • [6] Lithological control on multiple surface ruptures during the 2016-2017 Amatrice-Norcia seismic sequence
    Carminati, Eugenio
    Bignami, Christian
    Doglioni, Carlo
    Smeraglia, Luca
    [J]. JOURNAL OF GEODYNAMICS, 2020, 134
  • [7] Castaldo R., 2019, J GEOPHYS RES SOLID, P123, DOI [10.1002/2017JB01445, DOI 10.1002/2017JB01445]
  • [8] EVIDENCE FOR THE VARIATION OF STRESS DROP BETWEEN NORMAL AND THRUST FAULTING EARTHQUAKES IN ITALY
    COCCO, M
    ROVELLI, A
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH AND PLANETS, 1989, 94 (B7): : 9399 - 9416
  • [9] Role of the brittle-ductile transition on fault activation
    Doglioni, C.
    Barba, S.
    Carminati, E.
    Riguzzi, F.
    [J]. PHYSICS OF THE EARTH AND PLANETARY INTERIORS, 2011, 184 (3-4) : 160 - 171
  • [10] Offset components and fault-block motion during the 2016 central Italy earthquake (Mw 6.6, Monte Vettore fault system)
    Galderisi, Antonio
    Galli, Paolo
    [J]. JOURNAL OF STRUCTURAL GEOLOGY, 2020, 134 (134)