首页> 外文期刊>Tectonics >Crustal influx, indentation, ductile thinning and gravity redistribution in a continental wedge: Building a Moldanubian mantled gneiss dome with underthrust Saxothuringian material (European Variscan belt)
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Crustal influx, indentation, ductile thinning and gravity redistribution in a continental wedge: Building a Moldanubian mantled gneiss dome with underthrust Saxothuringian material (European Variscan belt)

机译:大陆楔中的地壳涌入,压痕,延性变薄和重力重新分布:用地下部萨克斯图林根材料(欧洲瓦里斯卡纳地带)建造摩尔达努比亚地幔片麻岩穹顶

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摘要

The contribution of lateral forces, vertical load, gravity redistribution and erosion to the origin of mantled gneiss domes in internal zones of orogens remains debated. In the Orlica-Snieznik dome (Moldanubian zone, European Variscan belt), the polyphase tectono-metamorphic history is initially characterized by the development of subhorizontal fabrics associated with medium- to high-grade metamorphic conditions in different levels of the crust. It reflects the eastward influx of a Saxothuringian-type passive margin sequence below a Tepla-Barrandian upper plate. The ongoing influx of continental crust creates a thick felsic orogenic root with HP rocks and migmatitic orthogneiss. The orogenic wedge is subsequently indented by the eastern Brunia microcontinent producing a multiscale folding of the orogenic infrastructure. The resulting kilometre-scale folding is associated with the variable burial of the middle crust in synforms and the exhumation of the lower crust in antiforms. These localized vertical exchanges of material and heat are coeval with a larger crustal-scale folding of the whole infrastructure generating a general uplift of the dome. It is exemplified by increasing metamorphic conditions and younging of (40)~Ar/~(39)Ar cooling ages toward the extruded migmatitic subdomes cored by HP rocks. The vertical growth of the dome induces exhumation by pure shear-dominated ductile thinning laterally evolving to non-coaxial detachment faulting, while erosion feeds the surrounding sedimentary basins. Modeling of the Bouguer anomaly grid is compatible with crustal-scale mass transfers between a dense superstructure and a lighter infrastructure. The model implies that the Moldanubian Orlica-Snieznik mantled gneiss dome derives from polyphase recycling of Saxothuringian material.
机译:对于造山带内部区域的片状片麻岩穹顶的起源,侧向力,垂直载荷,重力重新分布和侵蚀的贡献仍存在争议。在Orlica-Snieznik穹顶(欧洲Variscan带,Moldanubian地带)中,多相构造变质史最初的特征是在不同地壳水平上与中高品位变质条件有关的亚水平构造的发展。它反映了Tepla-Barrandian上板下方的Saxothuringian型被动边界序列向东涌入。持续不断的陆壳涌入形成了厚厚的长英质造山带根,上面有HP岩石和多生的正片麻岩。造山楔随后被东部的Brunia微大陆压入,产生了造山基础设施的多尺度折叠。所产生的千米级折叠与同形体中下地壳的可变埋葬和反形体中下地壳的掘出有关。这些物质和热量的局部垂直交换与整个基础设施的更大的地壳规模折叠同时发生,从而使圆顶总体抬升。以变​​质条件的增加和(40)〜Ar /〜(39)Ar冷却年龄向以HP岩石为中心的挤压变形亚次生的年轻化为例。穹顶的垂直生长通过横向剪切演化为非同轴分离断层的纯剪切为主的韧性减薄而引起掘出,而侵蚀则为周围的沉积盆地提供了动力。布格异常网格的建模与密集的上部结构和较轻的基础结构之间的地壳尺度传质兼容。该模型表明,摩尔达努比亚Orlica-Snieznik覆盖的片麻岩穹顶源自萨克斯图林根材料的多相回收。

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  • 来源
    《Tectonics》 |2012年第1期|p.13.1-13.27|共27页
  • 作者单位

    Stipska, Ecole et Observatoire des Sciences de la Terre, Institut de Physique du Globe, CNRS UMR 7516, Universite deStrasbourg, 1 rue Blessig, F-67084 Strasbourg, CEDEX, France Geoazur, CNRS UMR 6526, Universite de Nice, Sophia Antipolis, 28 av. Valrose, F-06108 Nice, France;

    Stipska, Ecole et Observatoire des Sciences de la Terre, Institut de Physique du Globe, CNRS UMR 7516, Universite deStrasbourg, 1 rue Blessig, F-67084 Strasbourg, CEDEX, France;

    Stipska, Ecole et Observatoire des Sciences de la Terre, Institut de Physique du Globe, CNRS UMR 7516, Universite deStrasbourg, 1 rue Blessig, F-67084 Strasbourg, CEDEX, France;

    Stipska, Ecole et Observatoire des Sciences de la Terre, Institut de Physique du Globe, CNRS UMR 7516, Universite deStrasbourg, 1 rue Blessig, F-67084 Strasbourg, CEDEX, France Czech Geological Survey, Klarov 3, CZ-11000 Prague, Czech Republic;

    Stipska, Ecole et Observatoire des Sciences de la Terre, Institut de Physique du Globe, CNRS UMR 7516, Universite deStrasbourg, 1 rue Blessig, F-67084 Strasbourg, CEDEX, France;

    Laboratoire de Geologie de Lyon, CNRS UMR 5276, Universite Claude Bernard, F-69622 Villeurbanne, France;

    Czech Geological Survey, Klarov 3, CZ-11000 Prague, Czech Republic Institute of Petrology and Structural Geology, Charles University, Albertov 6, CZ-12843 Prague, Czech Republic;

    Geoazur, CNRS UMR 6526, Universite de Nice, Sophia Antipolis, 28 av. Valrose, F-06108 Nice, France;

    Stipska, Ecole et Observatoire des Sciences de la Terre, Institut de Physique du Globe, CNRS UMR 7516, Universite deStrasbourg, 1 rue Blessig, F-67084 Strasbourg, CEDEX, France;

    Stipska, Ecole et Observatoire des Sciences de la Terre, Institut de Physique du Globe, CNRS UMR 7516, Universite deStrasbourg, 1 rue Blessig, F-67084 Strasbourg, CEDEX, France;

    Geosciences Rennes, CNRS UMR 6118, Universite Rennes 1, Campus de Beaulieu, F-35042 Rennes, CEDEX, France;

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