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A phase-field approach embedded in the Theory of Porous Media for the description of dynamic hydraulic fracturing

机译:埋入多孔介质理论中描述动态水力压裂的相场方法

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Hydraulic fracturing is a big issue in the exploitation of oil and gas resources as well as in the production of heat in deep geothermal energy plants. Investigating hydraulic fracturing processes numerically by means of a finite-element analysis, one has to address the porous solid and its pore content within a fully coupled computational approach. For this purpose, the present article combines the well-established Theory of Porous Media with elements of fracture mechanics, especially, with the phase-field approach to fracture, which has proven as a successful tool for the computation of fracturing processes in the field of standard solid mechanics. Although hydraulic fracturing is widely applied in practice, this procedure has not yet been investigated adequately by means of a full theoretical and computational framework on the basis of a multicomponent medium tackling a porous solid skeleton and its pore content with their mutual interaction of deformation and fracture, and fluid-driven processes both in the solid bulk and cracking domains. Addressing these features, the article concentrates on a permeable elastic solid skeleton, where the fracturing process is governed by brittle fracture driven either by a prescribed fluid pressure or by a prescribed fluid influx. Two- and three-dimensional numerical examples computed by use of the coupled solver PANDAS exhibit the possibilities of this approach. (C) 2016 Elsevier B.V. All rights reserved.
机译:水力压裂是石油和天然气资源开采以及深层地热发电厂的热量生产中的一个大问题。通过有限元分析对水力压裂过程进行数值研究,必须在完全耦合的计算方法中解决多孔固体及其孔隙含量。为此,本文结合了完善的多孔介质理论和裂缝力学要素,尤其是将相场方法用于裂缝,该方法已被证明是计算裂缝领域压裂过程的成功工具。标准的固体力学。尽管水力压裂在实践中得到了广泛的应用,但该方法尚未通过完整的理论和计算框架对基于多孔固体骨架及其孔隙含量的多组分介质及其变形和断裂的相互作用进行充分的研究。 ,以及在固体和裂化区域中的流体驱动过程。针对这些特征,该制品集中在可渗透的弹性固体骨架上,其中破裂过程由由规定的流体压力或规定的流体流入驱动的脆性断裂控制。通过使用耦合解算器PANDAS计算的二维和三维数值示例展示了这种方法的可能性。 (C)2016 Elsevier B.V.保留所有权利。

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