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The formation of open fractures in cohesive materials, results of scaled analogue and numerical modelling on fault zone porosity development

机译:在粘性材料中形成开放性骨折,缩放模拟和故障区孔隙度发展的数值模拟结果

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摘要

We compare analogue and numerical models of dilatational fractures at low confining stress. These structures form an effective conduit for fluid flow in the field, but are difficult to model since they form in cohesive materials at low stresses. We use a truly cohesive powder for the analogue models and a Discrete Element Model (DEM) with brittle-elastic bonds for the numerical modelling. We show that despite variations in the model type, small differences in the location of initial fractures and the way these structures link-up to control the evolution of the model, the observed structures are robust. Three structural zones develop where different fault types dominate. In 3D numerical models we show an increase of the porosity on the fault zone with increasing deformation. The progradation direction is shown to be controlled by the position of the fracture. The combination of analogue models with cohesive powder and DEMs with internal cohesion is an excellent tool to study the evolution of open fractures.
机译:我们比较模拟和在低围压疏密骨折的数值模型。这些结构形成用于在该领域的流体流动的有效管道,但难以模型,因为它们在低应力粘性材料形成。我们使用的模拟模型和一个真正的粘性粉末离散元模型(DEM)与数值模拟脆弹性债券。我们发现,尽管在模型类型的变化,初始龟裂的位置,这些结构链接起来,以控制模式的演变方式的微小差异,所观察到的结构是坚固的。三个构造带发展,不同的故障类型占主导地位。在3D数字模型我们给出随着变形断裂带增加孔隙度。示出了进积方向由断裂的位置来控制。模拟模型具有粘性的粉料和数字高程模型与内部凝聚力的结合是研究开放性骨折演进过程中的优良工具。

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