首页> 外文期刊>Lithos: An International Journal of Mineralogy, Petrology, and Geochemistry >Instantaneous healing of micro-fractures during coseismic slip: Evidence from microstructure and Ti in quartz geochemistry within an exhumed pseudotachylyte-bearing fault in tonalite
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Instantaneous healing of micro-fractures during coseismic slip: Evidence from microstructure and Ti in quartz geochemistry within an exhumed pseudotachylyte-bearing fault in tonalite

机译:同震滑移过程中微裂缝的瞬时愈合:从斜长石中假针状含假断层的石英地球化学中的微观结构和钛的证据

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摘要

Exhumed faults within the tonalitic Adamello pluton (Southern Alps) were seismic at depth as indicated by the presence of pseudotachylytes (solidified friction-induced melts). During cooling of tonalite, early-formed joints were first exploited by localized ductile shear zones associated with deposition of quartz veins (at similar to 500 degrees C), and later by pseudotachylyte-bearing cataclastic faults (at similar to 250-300 degrees C ambient temperature). Adjacent to pseudotachylytes, quartz of the host tonalite shows pervasive thin (1-10 mu m wide) healed micro-fractures and ultra-fine (1-2 mu m grain size) recrystallized aggregates along micro-shear zones. Under cathodoluminescence (CL) the healed micro-fractures have a darker gray shade than the host "magmatic" quartz that reflects a change in Ti concentrations ( [Ti]) as indicated by NanoSIMS measurements. [Ti] vary from 35-55 ppm in the CL-lighter host quartz to 10-13 ppm along the CL-darker healed micro-fractures. These [Ti] were inherited by the ultra-fine recrystallized aggregates that overprinted both the magmatic quartz and the healed micro-fractures during the high temperature transient related to frictional seismic slip. Based on Ti-in-quartz thermometry, we infer that micro-fracture healing occurred at higher temperatures than the ambient temperatures of faulting (250-300 degrees C at 0.2 GPa), for which [Ti] <1 ppm would be expected. Micro-fracture healing can be ascribed to the stage of seismic slip of faults on the basis of the observation that: (i) they are absent in the host rock surrounding high-T quartz veins un-exploited by faults; and (ii) they locally occur at the tip of pseudotachylyte injection veins filling new fractures developed during the propagation of the earthquake rupture. The relatively high [Ti] of micro-fractures are therefore interpreted to reflect quartz healing by a fluid overheated during the initial stages of frictional seismic slip and escaping from fault surface through the damage zone. This suggests that, in the presence of fluids, thermal pressurization of the fault did not occur and did not prevent frictional melting. The small-scale microstructures and geochemistry of quartz in the wall of the studied paleo-seismic fault record a complex deformational history, referable to the short-lived (on the order of 10(4) s) thermal anomaly induced by frictional seismic slip, that includes both micro-fracture healing and recrystallization. This microstructural assemblage of the natural exhumed fault provides a key for understanding the mechanics of an earthquake source. (c) 2016 Elsevier B.V. All rights reserved.
机译:如假速溶质(固结的摩擦引起的熔体)的存在所表明的那样,在tonaltic的Adamello岩体(南阿尔卑斯山)内发掘出的断层在深处是地震的。在色母岩冷却期间,首先通过与石英脉沉积相关的局部韧性剪切带(在约500摄氏度下)利用早期形成的节理,然后通过伪速溶质裂变断层(在约250-300摄氏度环境下)开发温度)。与假速溶电解质相邻,主体斜长石的石英显示出微剪切带普遍弥漫的薄(1-10微米宽)愈合的微裂缝和超细(1-2微米粒径)重结晶的聚集体。在阴极发光(CL)下,愈合的微裂缝比主体“岩浆”石英具有更深的灰色阴影,这反映了NanoSIMS测量表明的Ti浓度([Ti])的变化。 [Ti]范围从CL-打火机主体石英中的35-55 ppm到CL-较暗器愈合的微裂缝的10-13 ppm。这些[Ti]被超细的再结晶聚集体所继承,该聚集体在与摩擦地震滑动有关的高温瞬变过程中覆盖了岩浆石英和已愈合的微裂缝。基于石英中钛的测温法,我们推断微断裂愈合发生在比断层环境温度(0.2 GPa下250-300摄氏度)更高的温度下,预计[Ti] <1 ppm。根据以下观察结果可以将微裂缝愈合归因于断层的地震滑动阶段:(i)高T石英脉周围未被断层开采的基质岩石中不存在微裂缝愈合; (ii)它们局部发生在假速溶液注入静脉的尖端,填补了地震破裂传播过程中形成的新裂缝。因此,相对较高的微裂缝[Ti]可以解释为反映了在摩擦地震滑动初期和从断层表面逃逸穿过破坏区的过程中,流体过热引起的石英愈合。这表明在存在流体的情况下,断层没有发生热加压,也没有阻止摩擦融化。所研究的古地震断层壁中石英的小规模微观结构和地球化学记录了一个复杂的变形历史,这指的是由摩擦地震滑动引起的短暂的(约10(4)s)热异常,其中包括微骨折愈合和重结晶。自然发掘断层的这种微观结构组合为理解地震震源机理提供了关键。 (c)2016 Elsevier B.V.保留所有权利。

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