首页> 外文期刊>Tectonophysics: International Journal of Geotectonics and the Geology and Physics of the Interior of the Earth >Seismic anisotropy in the Morcles nappe shear zone: Implications for seismic imaging of crustal scale shear zones
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Seismic anisotropy in the Morcles nappe shear zone: Implications for seismic imaging of crustal scale shear zones

机译:Morcles推覆剪切带的地震各向异性:对地壳剪切带地震成像的意义

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Microstructures and textures of calcite mylonites from the Morcles nappe large-scale shear zone in southwestern Switzerland develop principally as a function of 1) extrinsic physical parameters including temperature, stress, strain, strain rate and 2) intrinsic parameters, such as mineral composition. We collected rock samples at a single location from this shear zone, on which laboratory ultrasonic velocities, texture and microstructures were investigated and quantified. The samples had different concentration of secondary mineral phases (<. 5 up to 40. vol.%). Measured seismic P wave anisotropy ranges from 6.5% for polyphase mylonites (~. 40. vol.%) to 18.4% in mylonites with <. 5. vol.% secondary phases. Texture strength of calcite is the main factor governing the seismic P wave anisotropy. Measured S wave splitting is generally highest in the foliation plane, but its origin is more difficult to explain solely by calcite texture. Additional texture measurements were made on calcite mylonites with low concentration of secondary phases (≤. 10. vol.%) along the metamorphic gradient of the shear zone (15. km distance). A systematic increase in texture strength is observed moving from the frontal part of the shear zone (anchimetamorphism; 280. °C) to the higher temperature, basal part (greenschist facies; 350-400. °C). Calculated P wave velocities become increasingly anisotropic towards the high-strain part of the nappe, from an average of 5.8% in the frontal part to 13.2% in the root of the basal part. Secondary phases raise an additional complexity, and may act either to increase or decrease seismic anisotropy of shear zone mylonites. In light of our findings we reinterpret the origin of some seismically reflective layers in the Gr?ne-Zweisimmen line in southwestern Switzerland (PNR20 Swiss National Research Program). We hypothesize that reflections originate in part from the lateral variation in textural and microstructural arrangement of calcite mylonites in shear zones.
机译:来自瑞士西南部Morcles推覆大规模剪切带的方解石my铁矿的微观结构和织构主要是由于以下因素引起的:1)外在物理参数,包括温度,应力,应变,应变率和2)固有参数,例如矿物组成。我们从该剪切带的单个位置收集了岩石样品,在该位置上对实验室超声速度,质地和微结构进行了调查和量化。样品具有不同浓度的次生矿物质相(<。5至最高40. vol。%)。测得的地震P波各向异性范围从多相白斑岩的6.5%(约40.vol。%)到≤的白斑岩的18.4%。 5.vol。%次级相。方解石的纹理强度是决定地震P波各向异性的主要因素。实测的S波分裂通常在叶面最高,但仅凭方解石质地很难解释其起源。沿剪切带的变质梯度(距离15. km),对次生相浓度较低(≤10. vol。%)的方解石my铁矿进行了额外的织构测量。观察到织构强度的系统性增加,从剪切区的前部(变形); 280.C移到较高的基础温度(绿片岩相; 350-400.C)。计算得出的P波速度朝着尿布的高应变部分越来越各向异性,从额叶的平均5.8%到基部的根部的平均13.2%。次生相增加了额外的复杂性,并且可能起到增加或减小剪切带my石的地震各向异性的作用。根据我们的发现,我们重新解释了瑞士西南部Grne-Zweisimmen线中一些地震反射层的起源(PNR20瑞士国家研究计划)。我们假设反射的部分原因是剪切区内方解石my石的组织结构和微观结构的横向变化。

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