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A new chart of hydraulic fracture height prediction based on fluid–solid coupling equations and rock fracture mechanics

机译:基于流固耦合方程和岩石破裂力学的水力压裂高度预测新图

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摘要

The conventional method to predict hydraulic fracture height depends on linear elastic mechanics, and the typical Gulrajani–Nolte chart fails to reflect fracture height when the net pressure in the fracture is too high. Based on fluid–solid coupling equations and rock fracture mechanics, a new chart is obtained by the ABAQUS extended finite-element method. Compared with the Gulrajani–Nolte chart, this new chart shows that longitudinal propagation of hydraulic fracture is still finite when the net pressure in the fracture is higher than in situ stress difference between reservoir and restraining barrier. The barrier has a significant shielding effect on the longitudinal propagation of hydraulic fracture, and there is a threshold for an injection rate of fracturing fluid to ensure hydraulic fracture propagates in the barrier. Fracture height decreases with the increase of in situ stress difference. When the ratio of net pressure to in situ stress difference is less than 0.56, the propagation of hydraulic fracture is completely restricted in the reservoir. Hydraulic fracturing parameters in Well Shen52 and Well Shen55 are optimized by using the new chart. Array acoustic wave logging shows that the actual fracture height is at an average error within 14.3% of the theoretical value, which proves the accuracy of the new chart for field application.
机译:预测水力压裂高度的常规方法取决于线性弹性力学,当裂缝中的净压力过高时,典型的Gulrajani–Nolte图无法反映裂缝高度。基于流固耦合方程和岩石断裂力学,通过ABAQUS扩展有限元方法获得了新的图表。与Gulrajani–Nolte图相比,该新图显示,当裂缝中的净压力高于储层和约束层之间的原地应力差时,水力裂缝的纵向传播仍然是有限的。屏障对水力压裂的纵向传播具有显着的屏蔽作用,并且压裂液的注入速率具有阈值以确保水力压裂在屏障中的传播。断裂高度随原位应力差的增加而减小。当净压与原地应力差之比小于0.56时,水力压裂的传播就完全受到限制。通过使用新图表优化了Shen52和Shen55井的水力压裂参数。阵列声波测井表明,实际裂缝高度的平均误差在理论值的14.3%之内,这证明了新图表在现场应用的准确性。

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