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Interaction of Multiple Non-Planar Hydraulic Fractures in Horizontal Wells

机译:多个非平面液压骨折在水平井中的相互作用

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The use of multi-fracced horizontal well technology is one of the key reasons for the recent success in the exploitation of unconventional resources such as shale gas and shale oil. This technology of placing multiple fractures in horizontal wells has provided economic production rates resulting in the prevalent development of unconventional oil and gas reservoirs. The fracture stimulation process typically involves placing multiple fractures stage by stage along the horizontal well using diverse well completion technologies. The effective design of such massive fracture stimulation requires an understanding of how multiple hydraulic fractures would grow and interact with each other in heterogeneous formations. This is especially challenging as the interaction of these fractures are subject to the dynamic process of subsurface geomechanical stress changes induced by the fracture treatment itself. This paper presents a new three dimensional (3D) hydraulic fracture computational simulator which describes non- planar hydraulic fracture growth in heterogeneous formations. It addresses the geomechanical interaction of multiple fractures, and can be extended to considering interaction with natural fractures as well. In this model, the interaction of multiple non-planar fractures is meticulously captured by means of boundary integral formulation with dislocation segments solution techniques. The flow of proppant laden frac fluid within a fracture is represented by a power-law fluid model according to the Reynolds lubrication theory. The derived non-linear fracture growth and fluid flow equations are solved in a coupled manner via a proprietary, robust and efficient algorithm where mass conservation (i.e., frac fluid and proppant) is strictly observed. Examples are presented to demonstrate that the present numerical approach can be used to provide a much needed insight into the growth of multiple fractures under the influence of subsurface geomechanical stress ‘shadows’ and thus, serve as a valuable tool for optimization of multiple hydraulic fractures design.
机译:使用多摩擦水平井技术是最近利用非传统资源取得成功的主要原因之一,如页岩气和页岩油。在水平井上放置多种骨折的这种技术提供了经济生产率,导致非传统石油和天然气储层的普遍存产。断裂刺激过程通常涉及沿着沿水平井的阶段逐步放置多个裂缝阶段。这种大规模骨折刺激的有效设计需要了解多种液压骨折将如何在异构性形成中彼此生长和相互作用。这尤其具有挑战性,因为这些裂缝的相互作用受到裂缝处理本身诱导的地下地理应力变化的动态过程。本文介绍了一种新的三维(3D)液压骨折计算模拟器,其描述了异质形成的非平面液压骨折生长。它解决了多个骨折的地质力学相互作用,并且可以扩展到考虑与自然骨折的相互作用。在该模型中,通过具有脱位段解决方案技术的边界整体配方,通过边界整体配方精细捕获多个非平面裂缝的相互作用。支撑剂升起的FRAC流体在裂缝内由根据雷诺润滑理论的动力法流体模型表示。通过专有的,鲁棒和有效的算法以耦合的方式求解衍生的非线性裂缝生长和流体流动方程,其中严格守恒(即,FRAC流体和支撑剂)被严格地观察到。提出了示例以证明本发明的数值方法可用于在地下地质力学应力“阴影”的影响下,为多个骨折的生长提供许多需要的洞察力,因此是用于优化多个液压裂缝设计的有价值的工具。

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