Microstructural evolution of pseudotachylyte-bearing rocks during increasing temperatures: Evidence from rock-heating experiments

Journal of Structural Geology - Tập 149 - Trang 104398 - 2021
Lei Zhang1,2, Haibing Li1,2, Zhiming Sun3, Yong Cao3, Huan Wang1,2
1Key Laboratory of Deep-Earth Dynamics of Ministry of Natural Resources, Institute of Geology, Chinese Academy of Geological Sciences, Beijing 100037, China
2Southern Marine Science and Engineering Guangdong Laboratory(Guangzhou), Guangzhou, 511458, China
3Key Laboratory of Paleomagnetism and Tectonic Reconstruction of Ministry of Natural Resources, Institute of Geomechanics, Chinese Academy of Geological Sciences, Beijing, 100081, China

Tài liệu tham khảo

Acton, 2007, Micromagnetic coercivity distributions and interactions in condrules with implications for paleointensities of the early solar system, J. Geophys. Res., 112, 133 Andersen, 2006, Fossil earthquakes recorded by pseudotachylytes in mantle peridotite from the Alpine subduction complex of Corsica, Earth Planet Sci. Lett., 242, 58, 10.1016/j.epsl.2005.11.058 Barker, 2005, Pseudotachylyte-generating faults in central otago, New Zealand, Tectonophysics, 397, 211, 10.1016/j.tecto.2004.12.005 Bird, 1977, Native iron occurrences of disko island, Greenland, J. Geol., 85, 359, 10.1086/628305 Cahyono, 2013, Catalytic coal-tar decomposition to enhance reactivity of low-grade iron ore, Fuel Process. Technol., 113, 84, 10.1016/j.fuproc.2013.03.012 Camacho, 1995, Large volumes of anhydrous pseudotachylyte in the woodroffe thrust, eastern musgrave ranges, Australia, J. Struct. Geol., 17, 371, 10.1016/0191-8141(94)00069-C Chu, 2012, Pseudotachylyte in the tananao metamorphic complex, taiwan: occurrence and dynamic phase changes of fossil earthquakes, Tectonophysics, 581, 62, 10.1016/j.tecto.2012.01.017 Densmore, 2007, Active tectonics of the Beichuan and Pengguan faults at the eastern margin of the Tibetan Plateau, Tectonics, 26, TC4005, 10.1029/2006TC001987 Di Toro, 2004, Superheated friction-induced melts in zoned pseudotachylites within the Adamello tonalites (Italian Southern Alps), J. Struct. Geol., 26, 1783, 10.1016/j.jsg.2004.03.001 Di Toro, 2005, Can pseudotachylytes be used to infer earthquake source parameters? an example limitations in the study of exhumed faults, Tectonophysics, 402, 3, 10.1016/j.tecto.2004.10.014 Ferré, 2012, Magnetic properties of fault pseudotachylytes in granites, J. Geophys. Res., 117, B01106 Ferré, 2017, Earthquakes in the mantle? Insights from rock magnetism of pseudotachylytes, J. Geophys. Res., 122, 10.1002/2017JB014618 Ferré, 2005, The origin of high magnetic remanence in fault pseudotachylites: theoretical considerations and implication for coseismic electrical currents, Tectonophysics, 402, 125, 10.1016/j.tecto.2005.01.008 Fondriest, 2020, Pseudotachylyte alteration and the rapid fade of earthquake scars from the geological record, Geophys. Res. Lett., 47, 22, 10.1029/2020GL090020 Giger, 2008, Slip localization and fault weakening as a consequence of fault gouge strengthening--Insights from laboratory experiments, Earth Planet Sci. Lett., 276, 73, 10.1016/j.epsl.2008.09.004 Goodwin, 1991, Effects of progressive mylonitization on Ar retention in biotites from the Santa Rosa mylonite zone, California, and thermochronologic implications, Contrib. Mineral. Petrol., 108, 283, 10.1007/BF00285937 Hamada, 2009, Estimated dynamic shear stress and frictional heat during the 1999 Taiwan Chi-Chi earthquake: a chemical kinetics approach with isothermal heating experiments, Tectonophysics, 469, 73, 10.1016/j.tecto.2009.01.036 Hammer, 2008, Experimental studies of the kinetics and energetics of magma crystallization, Rev. Mineral. Geochem., 69, 9, 10.2138/rmg.2008.69.2 Jana, 1997, The influence of sulfur on partitioning of siderophile elements, Geochem. Cosmochim. Acta, 61, 5255, 10.1016/S0016-7037(97)00307-4 Janssen, 2010, Amorphous material in SAFOD core samples (San Andreas Fault): evidence for crush-origin pseudotachylytes?, Geophys. Res. Lett., 37, L01303, 10.1029/2009GL040993 Ji, 2011, A review of meteorites magnetism, Prog. Geophys., 26, 1983 Kaneki, 2016, Organochemical characteristics of carbonaceous materials as indicators of heat recorded on an ancient plate-subduction fault, Geophys. Geosyst., 17, 2855, 10.1002/2016GC006368 Kaneki, 2018, Mechanochemical effect on maturation of carbonaceous material: implications for thermal maturity as a proxy for temperature in estimation of coseismic slip parameters, Geophys. Res. Lett., 45, 2248, 10.1002/2017GL076791 Kelly, 1994, Laser-probe 40Ar/39Ar investigation of a pseudotachylyte and its host rock from the Outer Isles thrust, Scotland. Geology., 22, 443 Kuo, 2011, Temperature estimates of coseismic heating in clay-rich fault gouges, the Chelungpu fault zones, Taiwan, Tectonophysics, 502, 315, 10.1016/j.tecto.2011.02.001 Kuo, 2017, Fault gouge graphitization as evidence of past seismic slip, Geology, 45, 10.1130/G39295.1 Kuo, 2018, Carbonaceous materials in the fault zone of the longmenshan fault belt: 1. Signatures within the deep wenchuan Earthquake Fault zone and their implications, Minerals, 8, 385, 10.3390/min8090385 Kuo, 2018, Carbonaceous materials in the fault zone of the longmenshan fault belt: 2. Characterization of fault gouge from deep drilling and implications for fault maturity, Minerals, 8, 393, 10.3390/min8090393 Laubach, 2019, The role of chemistry in fracture pattern development and opportunities to advance interpretations of geological materials, Rev. Geophys., 57, 1065, 10.1029/2019RG000671 Li, 1996, Geochemistry of mantle-core differentiation at high pressure, Nature, 381, 686, 10.1038/381686a0 Li, 2008, Co-seisimic surface rupture and dextralslip oblique thrusting of the Ms 8.0 Wenchuan earthquake, Acta Geol. Sin., 82, 1623 Li, 2013, Characteristics of the fault-related rocks, fault zones and the principal slip zone in the wenchuan Earthquake Fault scientific drilling project hole-1 (WFSD-1), Tectonophysics, 584, 23, 10.1016/j.tecto.2012.08.021 Li, 2014, Structural and physical property characterization in the Wenchuan earthquake Fault Scientific Drilling project - hole 1 (WFSD-1), Tectonophysics, 619–620, 86, 10.1016/j.tecto.2013.08.022 Li, 2018, Fault behavior, physical properties and seismic activity of the Wenchuan earthquake fault zone: evidences from the Wenchuan earthquake Fault Scientific Drilling project (WFSD), Chin. J. Geophys., 61, 1680 Li, 2014, Influencing factors of iron precipitation of slag under reducing conditions, J. China Coal Soc., 39, 1372 Li, 2006, Sedimentary responses to Late Cenozoic thrusting and strike-slipping of Longmen Shan along eastern margin of Tibetan Plateau, Acta Sedment. Sin., 24, 153 Li, 2008, High temperature and high pressure experiment of crystallization kinetics of alkaline feldspar, Chin. Sci. Bull., 45, 1767 Lin, 1994, Glassy pseudotavhylyte veins from the fuyun fault zone, northwest China, J. Struct. Geol., 16, 71, 10.1016/0191-8141(94)90019-1 Lin, 1998, Selective melting processes as inferred from experimentally generated pseudotachylytes, J. Asian Earth Sci., 16, 533, 10.1016/S0743-9547(98)00040-3 Lin, 2008, 348 Ma, 1996, Tectonic deformation of Pengguan complex as a nappe, Acta Geol. Sichuan, 16, 110 Magloughlin, 1989, The nature and significance of pseudotachylite from the Nason terrane, North Cascade Mountains, Washington, J. Struct. Geol., 11, 907, 10.1016/0191-8141(89)90107-7 Magloughlin, 1992, Microstructural and chemical changes associated with cataclasis and frictional melting at shallow crustal levels: the cataclasite-pseudotachylyte connection, Tectonophysics, 204, 243, 10.1016/0040-1951(92)90310-3 Man, 2014, Influence of temperature and time on reduction behavior in iron ore–coal composite pellets, Powder Technol., 256, 361, 10.1016/j.powtec.2014.02.039 Mitchell, 2015, Catastrophic emplacement of giant landslides aided by thermal decomposition: heart Mountain, Wyoming, Earth Planet Sci. Lett., 411, 199, 10.1016/j.epsl.2014.10.051 Mitchell, 2016, Fault welding by pseudotachylyte formation, Geology, 44, 1059, 10.1130/G38373.1 Mittempergher, 2014, Origin of hydrous fluids at seismogenic depth: constraints from natural and experimental fault rocks, Earth Planet Sci. Lett., 385, 97, 10.1016/j.epsl.2013.10.027 Nagata, 1972, Lunar rock magnetism, Earth Moon Planets, 4, 160 Nakamura, 2002, Laboratory verification of submicron magnetite production in pseudotachylytes: relevance for paleointensity studies, Earth Planet Sci. Lett., 201, 13, 10.1016/S0012-821X(02)00704-5 Nicola, 2011, Fault lubrication and earthquake propagation in thermally unstable rocks, Geology, 39, 35 Nigara, 1986, Production of carbon monnxide by direct thermal splitting of carbon dioxide at high temperature, Bull. Chem. Soc. Jpn., 59, 1997, 10.1246/bcsj.59.1997 Pasek, 2012, Fulgurite morphology: a classification scheme and clues to formation, Contrib. Mineral. Petrol., 164, 477, 10.1007/s00410-012-0753-5 Pec, 2012, Origin of pseudotachylites in slow creep experiments, Earth Planet Sci. Lett., 355–356, 299, 10.1016/j.epsl.2012.09.004 Price, 2004, Modeling the direct solar conversion of CO2 to CO and O2, Ind. Eng. Chem. Res., 43, 2446, 10.1021/ie030745o Proctor, 2016, Pseudotachylyte increases the post-slip strength of faults, Geology, 44, 1003, 10.1130/G38349.1 Rubatto, 2001, Exhumation as fast as subduction?, Geology, 29, 3, 10.1130/0091-7613(2001)029<0003:EAFAS>2.0.CO;2 Si, 2018, Carbonaceous materials in the longmenshan fault belt zone: 3. Records of seismic slip from the trench and implications for faulting mechanisms, Minerals, 8, 457, 10.3390/min8100457 Sibson, 1975, Generation of pseudotachylyte by ancient seismic faulting, Geophys. J. Roy. Astron. Soc., 43, 775, 10.1111/j.1365-246X.1975.tb06195.x Sibson, 2006, The habitat of fault-generated pseudotachylyte: presence vs. absence of friction-melt, vol. 170, 153 Spray, 1987, Artificial generation of pseudotachylyte using frictional welding apparatus: simulation of melting on a fault plane, J. Struct. Geol., 9, 44, 10.1016/0191-8141(87)90043-5 Traynor, 2002, Direct solar reduction of CO2 to fuel: first prototype results, Ind. Eng. Chem. Res., 41, 1935, 10.1021/ie010871x Toyoshima, 1990, Pseudotachylite from the main zone of the Hidaka metamorphic belt, Hokkaido, northern Japan, J. Metamorph. Geol., 8, 507, 10.1111/j.1525-1314.1990.tb00483.x Violay, 2014, Effect of water on the frictional behavior of cohesive rocks during earthquakes, Geology, 42, 27, 10.1130/G34916.1 Violay, 2015, Thermo-mechanical pressurization of experimental faults in cohesive rocks during seismic slip, Earth Planet Sci. Lett., 429, 1, 10.1016/j.epsl.2015.07.054 Wakita, 1980, Hydrogen release: new indicator of fault activity, Science, 210, 188, 10.1126/science.210.4466.188 Wang, 2015, Multiple generations of pseudotachylyte in the Wenchuan fault zone and their implications for coseismic weakening, J. Struct. Geol., 74, 159, 10.1016/j.jsg.2015.03.007 Wang, 2019, Geochemical features of the pseudotachylytes in the Longmen Shan thrust belt, eastern Tibet, Quat. Int., 514, 173, 10.1016/j.quaint.2018.12.030 Wang, 2019, Paleoseismic slip records and uplift of the Longmen Shan, eastern Tibetan Plateau, Tectonics, 38, 354, 10.1029/2018TC005278 Wenk, 2000, Pseudotachylites in the eastern peninsular ranges of California, Tectonophysics, 321, 253, 10.1016/S0040-1951(00)00064-0 Xu, 2016, Research progress in experimental study of plagioclase crystallization, Acta Mineral. Sin., 36, 61 Yan, 2008, The Pengguan tectonic dome of Longmen Mountains, Sichuan Province: mesozoic denudation of a Neoproterozoic magmatic arc‐basin system, Sci. China, 51, 1545, 10.1007/s11430-008-0126-0 Yan, 2004, Neoproterozoic subduction and rifting on the northern margin of the Yangtze plate, China: implications for Rodinia reconstruction, Int. Geol. Rev., 46, 817, 10.2747/0020-6814.46.9.817 Zhang, 2017, Rock record and magnetic response to large earthquakes within Wenchuan Earthquake Fault Scientific Drilling cores, Geochem. Geophys. Geosyst., 18, 1889, 10.1002/2017GC006822 Zhang, 2017, Magnetic susceptibility of WFSD-2 borehole cores from the Longmenshan thrust belt and its implications for great seismic activity, Chin. J. Geophys., 60, 225 Zhang, 2018, Metallic iron formed by melting: a new mechanism for magnetic highs in pseudotachylyte, Geology, 46, 779, 10.1130/G40153.1 Zhang, 2019, Metallic iron formed by melting and its seismogenic setting indication, Acta Petrol. Sin., 35, 1875, 10.18654/1000-0569/2019.06.15 Zhang, 2008, 326 Zheng, 2016, New geochronology constraints on timing and depth of the ancient earthquakes along the Longmen Shan fault belt, eastern Tibet, Tectonics, 35, 2781, 10.1002/2016TC004210