The seismogenic fault system of the 2017 Mw 7.3 Iran-Iraq earthquake: constraints from surface and subsurface data, cross-section balancing, and restoration
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作者:
Tavani, Stefano
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Univ Napoli Federico II, DISTAR, Naples, ItalyUniv Napoli Federico II, DISTAR, Naples, Italy
Tavani, Stefano
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Parente, Mariano
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Univ Napoli Federico II, DISTAR, Naples, ItalyUniv Napoli Federico II, DISTAR, Naples, Italy
Parente, Mariano
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Puzone, Francesco
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Univ Napoli Federico II, DISTAR, Naples, ItalyUniv Napoli Federico II, DISTAR, Naples, Italy
Puzone, Francesco
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Corradetti, Amerigo
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Univ Napoli Federico II, DISTAR, Naples, ItalyUniv Napoli Federico II, DISTAR, Naples, Italy
Corradetti, Amerigo
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Gharabeigli, Gholamreza
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NIOC, Tehran, IranUniv Napoli Federico II, DISTAR, Naples, Italy
Gharabeigli, Gholamreza
[2
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Valinejad, Mehdi
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NIOC, Tehran, IranUniv Napoli Federico II, DISTAR, Naples, Italy
Valinejad, Mehdi
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Morsalnejad, Davoud
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NIOC, Tehran, IranUniv Napoli Federico II, DISTAR, Naples, Italy
Morsalnejad, Davoud
[2
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Mazzoli, Stefano
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Univ Napoli Federico II, DISTAR, Naples, ItalyUniv Napoli Federico II, DISTAR, Naples, Italy
Mazzoli, Stefano
[1
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[1] Univ Napoli Federico II, DISTAR, Naples, Italy
The 2017 M-w 7.3 Iran-Iraq earthquake occurred in a region where the pattern of major plate convergence is well constrained, but limited information is available on the seismogenic structures. Geological observations, interpretation of seismic reflection profiles, and well data are used in this paper to build a regional, balanced cross section that provides a comprehensive picture of the geometry and dimensional parameters of active faults in the hypocentral area. Our results indicate (i) the coexistence of thin-and thick-skinned thrusting, (ii) the reactivation of inherited structures, and (iii) the occurrence of weak units promoting heterogeneous deformation within the palaeo-Cenozoic sedimentary cover and partial decoupling from the underlying basement. According to our study, the main shock of the November 2017 seismic sequence is located within the basement, along the low-angle Mountain Front Fault. Aftershocks unzipped the up-dip portion of the same fault. This merges with a detachment level located at the base of the Paleozoic succession, to form a crustal-scale fault-bend anticline. Size and geometry of the Mountain Front Fault are consistent with a down-dip rupture width of 30 km, which is required for an M-w 7.3 earthquake.
机构:
Sichuan Highway Planning Survey Design & Res Inst, Chengdu 610041, Sichuan, Peoples R ChinaSichuan Highway Planning Survey Design & Res Inst, Chengdu 610041, Sichuan, Peoples R China
Wang, Zhiheng
Zhang, Rui
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Southwest Jiaotong Univ, Dept Remote Sensing & Geospatial Informat Engn, Chengdu 610031, Sichuan, Peoples R China
Southwest Jiaotong Univ, State Prov Joint Engn Lab Spatial Informat Techno, Chengdu 610031, Sichuan, Peoples R ChinaSichuan Highway Planning Survey Design & Res Inst, Chengdu 610041, Sichuan, Peoples R China
Zhang, Rui
Liu, Yuxin
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机构:
Sichuang Energy Wind Power Dev CO LTD, Chengdu 610041, Sichuan, Peoples R ChinaSichuan Highway Planning Survey Design & Res Inst, Chengdu 610041, Sichuan, Peoples R China