Deformation of the brittle-plastic transition zone at the post-seismic relaxation period: A case study of the Red River Fault

被引:0
|
作者
Dai W.-H. [1 ]
Zhou Y.-S. [1 ]
机构
[1] State Key Laboratory of Earthquake Dynamics, Institute of Geology, China Earthquake Administration, Beijing
来源
Dizhen Dizhi | 2019年 / 41卷 / 04期
关键词
Brittle-plastic transition; Cataclastic; Post-seismic relaxation; Red River Fault;
D O I
10.3969/j.issn.0253-4967.2019.04.012
中图分类号
学科分类号
摘要
The transition from microscopic brittle deformation to microscopic plastic deformation is called brittle-plastic transition, which is considered as a key layer for determining the limit of lower continental crust seismicity. The depth and deformation mechanism of the brittle-plastic transition zone is controlled mainly by temperature. Besides, the strain rate and fluid pore pressure also affect the transition during the different deformation stages at the seismic cycle. In this paper, microstructure observation of catalcastic samples collected from the Red River Fault was carried out using optical polarized microscopy and scanning electron microscopy. The morphology, microstructures of deformation characteristics, mineral composition, water-rock reaction, pressure solution, exsolution, crack healing in the samples were systematically observed. The mineral components quantitative analyses were examined using the EDS. Water-rock reaction and pressure solution were systematically observed under SEM. The fabric of the main minerals in the samples was measured using electron backscattered diffraction(EBSD). Based on these analyses, the deformation mode was setup for the brittle-plastic transition zone of the fault during the post-seismic relaxation period. Both brittle deformation and plastic deformation were developed in the cataclastic samples. EBSD data shows that the c axial fabrics of quartz present low-temperature plastic deformation characteristics. The feldspar deformed as cataclastic rock, and the micro-fracture in feldspar was healed by static recrystallized quartz and calcite veins. The calcite vein underwent plastic deformation, which represents the post-seismic relaxation deformation. Based on the analysis of deformation mechanism of cataclastic samples in brittle-plastic transition zone of the Red River Fault, and combined with previous studies, we concluded that the brittle fracture and fracture healing is the main deformation mode at brittle-plastic transition zone in the post-seismic relaxation. High stress and high strain rate at post-seismic relaxation lead to brittle fracture of high-strength minerals such as feldspar in rocks. Plastic deformation occurs in low-strength minerals such as quartz and mica. Under the fluid condition, micro-fractures were healed by quartz and calcite. The minerals such as quartz and calcite in the fracture transformed from static recrystallization to dynamic recrystallization with stress gradually accumulating. With fracture healing and stress accumulation, the fault strength gradually increases which could accumulate energy for the next earthquake. © 2019, Editorial Office of Seismology and Geology. All right reserved.
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页码:996 / 1011
页数:15
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共 28 条
  • [1] Ji S.-C., Dislocation splitting in the main rock-forming minerals and its rheological implications, Geoscience, 2, 4, pp. 118-125, (1988)
  • [2] Xia H.-R., Liu J.-L., The crystallographic preferred orientation of quartz and its applicafions, Geological Bulletin of China, 30, 1, pp. 58-70, (2011)
  • [3] Zhou Y.-S., Han L., Jing C., Et al., The rheological structures of brittle-plastic transition in Longmenshan fault zone and seismogenic mechanism of Wenchuan earthquake, Seismology and Geology, 36, 3, pp. 882-895, (2014)
  • [4] Zhou Y.-S., He C.-R., Deformation behavior transition of crustal bocks and its temperature-pressure conditions, Seismology and Geology, 22, 2, pp. 167-178, (2000)
  • [5] Abalos B., Puelles P., Fernandez-Armas S., Et al., EBSD microfabric study of pre-Cambrian deformations recorded in quartz pebbles from the Sierra de la Demanda(N Spain), Journal of Structural Geology, 33, 4, pp. 500-518, (2011)
  • [6] Brace W.F., Kohlstedt D.L., Limits on lithospheric stress imposed by laboratory experiments, Journal of Geophysical Research: Solid Earth, 85, B11, pp. 6248-6252, (1980)
  • [7] Cao S.Y., Franz N., Liu J.L., Et al., Rheological weakening of high-grade mylonites during low-temperature retrogression: The exhumed continental Ailao Shan-Red River fault zone, SE Asia, Journal of Asian Earth Sciences, 139, pp. 40-60, (2016)
  • [8] Chernak L.J., Hirth G., Selverstone J., Et al., Effect of aqueous and carbonic fluids on the dislocation creep strength of quartz, Journal of Geophysical Research: Solid Earth, 114, B4, (2009)
  • [9] Gueydan F., Leroy Y.M., Jolivet L., Mechanics of low-angle extensional shear zones at the brittle-ductile transition, Journal of Geophysical Research, 109, B12, (2004)
  • [10] Heidelbach F., Kunze K., Wenk H.R., Texture analysis of a recrystallized quartzite using electron diffraction in the scanning electron microscope, Journal of Structural Geology, 22, 1, pp. 91-104, (2000)