Nanoscale evidence for temperature-induced transient rheology and postseismic fault healing
Nanoscale evidence for temperature-induced transient rheology and postseismic fault healing
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DOI:
10.1130/g46317.1
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发表时间:
2019-12-01
期刊:
影响因子:
5.8
通讯作者:
Van Devener, B. R.
中科院分区:
文献类型:
--
作者:
Ault, A. K.;Jensen, J. L.;Van Devener, B. R.
Friction-generated heat and the subsequent thermal evolution control fault material properties and thus strength during the earthquake cycle. We document evidence for transient, nanoscale fault rheology on a high-gloss, light-reflective hematite fault mirror (FM). The FM cuts specularite with minor quartz from the Pleistocene El Laco Fe-ore deposit, northern Chile. Scanning and transmission electron microscopy data reveal that the FM volume comprises a 1000 degrees C) generated transiently amorphous, intermixed but immiscible, and rheologically weak Fe-oxide and silica. Hematite regrowth in a fault-perpendicular thermal gradient, sintering, twinning, and a topographic network of nanometer-scale ridges from crystals interlocking across the FM surface collectively restrengthened fault material. Results reveal how temperature-induced weakening preconditions fault healing. Nanoscale transformations may promote subsequent strain delocalization and development of off-fault damage.