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Changes in structural style of normal faults due to failure mode transition: First results from excavated scale models

机译:失效模式转变引起的正常断层构造样式变化:最初的开挖比例模型结果

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The effects of failure mode transition from tensile to shear on structural style and fault zone architecture have long been recognized but are not well studied in 3D, although the two modes are both common in the upper crust of Earth and terrestrial planets, and are associated with large differences in transport properties. We present a simple method to study this in physical scale models of normal faults, using a cohesive powder embedded in cohesionless sand. By varying the overburden thickness, the failure mode changes from tensile to hybrid and finally to shear. Hardening and excavating the cohesive layer allows post mortem investigation of 3D structures at high resolution. We recognize two end member structural domains that differ strongly in their attributes. In the tensile domain faults are strongly dilatant with steep open fissures and sharp changes in strike at segment boundaries and branch points. In the shear domain fault dips are shallower and fault planes develop striations; map-view fault traces undulate with smaller changes in strike at branches. These attributes may be recognized in subsurface fault maps and could provide a way to better predict fault zone structure in the subsurface. (C) 2015 Elsevier Ltd. All rights reserved.
机译:长期以来,人们已经认识到破坏模式从拉伸到剪切对结构样式和断层带结构的影响,但在3D模式下并未对此进行深入研究,尽管这两种模式在地球和地行星的上地壳中都很常见,并且与传输特性差异很大。我们提出了一种简单的方法,使用嵌入无粘性砂中的粘性粉末,在正常断层的物理尺度模型中对此进行研究。通过改变上覆层厚度,破坏模式将从拉伸转变为混合,最后变为剪切。硬化和挖掘粘结层可以在高分辨率下对3D结构进行事后调查。我们认识到两个末端成员结构域,它们的属性差异很大。在拉伸区域,断层强烈扩张,具有陡峭的开裂裂缝,并且在段边界和分支点的走向发生了急剧变化。在剪切域中,断层倾角较浅,断层平面上有条纹。地图视图断层的痕迹会随着分支处罢工的较小变化而波动。这些属性可以在地下断层图中识别,并且可以提供一种更好地预测地下断层带结构的方法。 (C)2015 Elsevier Ltd.保留所有权利。

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