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The evolution of slate microfabrics during progressive accretion of foreland basin sediments

机译:前陆盆地沉积物逐步增生过程中板岩微制造的演变

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Here, we study slate microfabrics from the exhumed accretionary wedge of the central European Alps and focus on the development of foliation. High-resolution micrographs from novel BIB-SEM imaging and Synchrotron X-ray Fluorescence Microscopy are analysed with 2D auto-correlation functions to quantify the geometry and spacing of slate microfabrics along a metamorphic gradient covering the outer and inner wedge (200-330 degrees C). The sedimentary layering primarily controls the morphology of the slate microfabrics. However, from outer to inner wedge, a fabric evolution is observed where diagenetic foliations gradually transform to secondary continuous and spaced foliations. With increasing metamorphic grade, the amount of recrystallized phyllosilicate grains and their interconnectivity increase, as does clast/microlithon elongation (aspect ratios up to 11), while foliation spacing decreases to 20 mu m. This foliation evolution under non-coaxial deformation involves a combination of mechanical rotation of phyllosilicates, fracturing, and fluid-assisted pressure-dissolution-precipitation creep. The latter is the dominant deformation mechanism at T 230 degrees C and accommodates background strain in the inner wedge. The evolving microstructural anisotropy is interpreted to lead to strain weakening by structural softening and may provide preferential fluid pathways parallel to the foliation, enabling the dehydration of large rock volumes in accretionary sediment wedges undergoing prograde metamorphism.
机译:在这里,我们从中欧阿尔卑斯山的膨胀膨胀楔形坡道上学习石板微制造,并专注于叶的发展。来自新型Bib-SEM成像和同步旋流X射线荧光显微镜的高分辨率显微照片用2D自相关函数分析,以沿着覆盖外部和内楔的变质梯度来量化板岩微制造的几何形状和间隔(200-330摄氏度)。沉积分层主要控制板岩微制造的形态。然而,从外部楔形到内楔,观察到织物演化,其中成岩叶逐渐变换为二次连续和间隔叶。随着变质等级的增加,重结晶的字节硅酸盐晶粒的量及其互连性增加,如夹紧/微溶伸长(宽高比最多11),而叶片间距降至20μm。在非同轴变形下的这种叶子演化涉及文学,压裂和流体辅助压力 - 溶解 - 沉淀沉淀蠕变的机械旋转的组合。后者是T&GT的主导变形机制; 230℃并容纳内楔子中的背景应变。演化的微观结构各向异性被解释为导致结构软化的菌株减弱,并且可以提供平行于叶的优先流体途径,从而能够在接受变质变质的沉积物楔形楔下的大岩石体积的脱水。

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