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Geological constraints on the dynamic emplacement of cone-sheets - The Ardnamurchan cone-sheet swarm, NW Scotland

机译:锥形薄片动态定位的地质约束-苏格兰西北部Ardnamurchan锥形薄片群

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Cone-sheets are a significant constituent of many central volcanoes, where they contribute to volcano growth by intrusion and through flank eruptions, although the exact emplacement mechanisms are still controversially discussed. In particular, it is not yet fully resolved whether cone-sheets propagate as magma-driven, opening-mode fractures or as shear fractures, and to what extent pre-existing host-rock structures and different stress fields influence cone-sheet emplacement. To shed further light on the role of these parameters in cone-sheet emplacement, we use detailed field and remote sensing data of the classic Ardnamurchan cone-sheet swarm in NW-Scotland, and we show that the cone-sheets primarily propagated as opening-mode fractures in the sigma(1)-sigma(2) plane of the volcanic stress field. In addition, more than one third of the Ardnamurchan cone-sheet segments are parallel to lineaments that form a conjugate set of NNW and WNW striking fractures and probably reflect the regional NW SE orientation of sigma(1) during emplacement in the Palaeogene. Cone-sheets exploit these lineaments within the NE and SW sectors of the Ardnamurchan central complex, which indicates that the local volcanic stress field dominated during sheet propagation and only allowed exploitation of host-rock discontinuities that were approximately parallel to the sheet propagation path. In addition, outcrop-scale deflections of cone-sheets into sills and back into cone-sheets (also referred to as "staircase" geometry) are explained by the interaction of stresses at the propagating sheet tip with variations in host-rock strength, as well as the influence of sheet-induced strain. As a consequence, cone-sheets associated with sill-like segments propagate as mixed-mode I/II fractures. Hence, cone-sheet emplacement requires a dynamic model that takes into account stress fields at various scales and the way propagating magma interacts with the host rock and its inherent variations in rock strength. (C) 2015 Elsevier Ltd. All rights reserved.
机译:锥面层是许多中央火山的重要组成部分,尽管它们的确切沉积机制仍存在争议,但它们通过侵入和侧面喷发促进火山的生长。尤其是,尚未完全解决锥板是作为岩浆驱动的开裂裂缝还是剪切裂缝传播,以及预先存在的基岩结构和不同应力场在多大程度上影响锥板的位置。为了进一步阐明这些参数在锥板安置中的作用,我们使用了苏格兰西北部经典Ardnamurchan锥板群的详细现场数据和遥感数据,并且我们证明了锥板主要是通过开放传播的。模式在火山应力场的sigma(1)-sigma(2)平面破裂。此外,超过三分之一的Ardnamurchan锥板节段与线阵平行,这些线阵形成了NNW和WNW撞击裂缝的共轭集合,并可能反映了古近纪就位期间sigma(1)的区域NW SE方向。锥板利用了Ardnamurchan中央复合体的NE和SW扇形内的这些构造,这表明在板扩散过程中局部火山应力场占主导地位,并且仅允许开采近似平行于板扩散路径的基质岩石不连续性。另外,通过传播的板尖端处的应力与主体岩石强度的变化的相互作用来解释锥板向基石的露头尺度偏转,然后又返回锥板的几何形状(也称为“楼梯”几何形状)。以及薄板诱发应变的影响。结果,与基石状节段相关的圆锥形薄片会以混合模式I / II骨折的形式传播。因此,锥板的位置需要一个动态模型,该模型考虑各种尺度的应力场以及传播岩浆与基质岩石相互作用的方式及其岩石强度的固有变化。 (C)2015 Elsevier Ltd.保留所有权利。

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