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Observations of Fractures Induced by Hydraulic Fracturing in Anisotropic Granite

机译:各向异性花岗岩水力压裂引起的断裂观察

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To investigate how the viscosity of the fracturing fluid affects fracture propagation, hydraulic fracturing experiments using three fluids with different viscosities (supercritical CO2, water, and viscous oil) under the true tri-axial condition were conducted on anisotropic granite specimens, and then the induced fractures were microscopically observed via a fluorescent method. Fractures induced by hydraulic fracturing are considerably tortuous from a microscopic view. A higher viscosity creates a smoother fracture pattern. The tortuosity, which is defined as the total fracture length along a pathway divided by the direct length of the two ends of a fracture, ranges from 1.05 to 1.13, demonstrating that the viscosity of fracturing fluid influences the fracture propagation pattern due to the different pathways of fracture propagation. In addition, hydraulic fracturing can induce many derivative pathways around the main fracture. Hydraulic fracturing with a lower viscosity fluid forms a more complex fracture network in rocks; the fracture induced by supercritical CO2 has the most branches along the main fracture. From these observations, fracture propagation by hydraulic fracturing sometimes develops by the shear fracture mode. This shear fracturing is often observed for a low-viscosity supercritical CO2 injection, which agrees with our results from AE monitoring and waveform analysis.
机译:为了研究压裂液的粘度如何影响裂缝扩展,在各向异性花岗岩样品上使用了在真三轴条件下使用三种不同粘度的流体(超临界CO2,水和粘性油)的水力压裂实验,然后进行了诱导。通过荧光方法在显微镜下观察骨折。从微观上看,由水力压裂引起的断裂是曲折的。较高的粘度产生较平滑的断裂图案。曲折度定义为沿着一条路径的总裂缝长度除以裂缝两端的直接长度,范围为1.05至1.13,这表明压裂液的粘度由于不同的途径而影响裂缝的传播方式裂缝扩展。另外,水力压裂可以在主裂缝周围引起许多导数路径。用较低粘度的流体进行水力压裂会在岩石中形成更复杂的压裂网络。超临界CO2诱导的裂缝沿主裂缝分布最多。从这些观察结果来看,水力压裂的裂缝扩展有时是通过剪切裂缝模式发展的。对于低粘度超临界CO2注入,通常会观察到这种剪切断裂,这与我们从AE监测和波形分析得出的结果一致。

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