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Numerical Modeling of Proppant Transport in Complex Hydraulic Fracture Propagation

机译:复合液压断裂繁殖中的支撑剂运输的数值模拟

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Hydraulic fracturing is a stimulation technique used in unconventional reservoirs to generate sufficient reservoir contact for viable production. During stimulation, proppant is pumped into the system to keep fractures open when, at a later stage, injection ceases and fluid is recovered as fractures close. Thus, controlling proppant distribution in the fracture is important to improve well productivity. Several factors influence proppant placement and settling such as proppant size, proppant density and carrier-fluid rheology. However, accurately predicting, and consequently optimizing, proppant placement in complex fracture systems remains an industry challenge. The objective of this study is to use advanced modeling techniques of proppant transport inside complex fracture systems using a 3D simulator that couples geomechan ics, fracture mechanics, fluid behavior and proppant transport to assess the optimization of stimulation treatments. In this study proppant transport models incorporate the interaction between hydraulic fractures (HF) and natural fractures (NF) of various sizes and orientations. Treatments were simulated in systematic variations of proppant size, proppant density and fluid viscosity. Fluid rheology, proppant size and density are all major parameters affecting the proppant settling rate. In more complex systems, proppant placement is strongly influenced by the location, size, and orientation of natural fractures. Based on the size of proppant and viscosity of the injected fluid, proppant may or may not enter the natural fractures.
机译:液压压裂是一种在非传统水库中使用的刺激技术,以产生足够的水库接触以进行可行的生产。在刺激期间,支撑剂被泵入系统中以保持裂缝在后期,注射停止和液体被回收时打开,因为裂缝关闭。因此,控制裂缝中的支撑剂分布对于提高良好的生产率是重要的。几个因素影响支撑剂放置和沉降,如支撑剂尺寸,支撑剂密度和载体流体流变。然而,准确地预测,并因此优化,在复杂的骨折系统中的支撑剂放置仍然是一个行业挑战。本研究的目的是利用3D模拟器利用复杂裂缝系统内的支撑剂运输的先进建模技术,这些方法使用3D模拟器耦合地理工理,裂缝力学,流体行为和支线运输,以评估刺激治疗的优化。在该研究中,支撑剂运输模型包含各种尺寸和方向的液压裂缝(HF)和天然骨折(NF)之间的相互作用。在适度的支撑剂尺寸,支撑剂密度和流体粘度的系统变化中模拟处理。流体流变学,支撑剂尺寸和密度是影响支撑剂稳定率的主要参数。在更复杂的系统中,支撑剂放置受到自然骨折的位置,尺寸和定向的强烈影响。基于支撑剂的尺寸和注入的流体的粘度,支撑剂可以或不进入自然骨折。

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