Abstract Porous media fracturing dynamics: stepwise crack advancement and fluid pressure oscillations
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Porous media fracturing dynamics: stepwise crack advancement and fluid pressure oscillations

机译:多孔介质的破裂动力学:裂纹逐步扩展和流体压力振荡

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AbstractWe present new results explaining why fracturing in saturated porous media is not smooth and continuous but is a distinct stepwise process concomitant with fluid pressure oscillations.  All exact solutions and almost all numerical models yield smooth fracture advancement and fluid pressure evolution, while recent experimental results, mainly from the oil industry, observation from geophysics and a very few numerical results for the quasi-static case indeed reveal the stepwise phenomenon. We summarize first these new experiments and these few numerical solutions for the quasi-static case. Both mechanical loading and pressure driven fractures are considered because their behaviours differ in the direction of the pressure jumps. Then we explore stepwise crack tip advancement and pressure fluctuations in dynamic fracturing with a hydro-mechanical model of porous media based on the Hybrid Mixture Theory. Full dynamic analyses of examples dealing with both hydraulic fracturing and mechanical loading are presented. The stepwise fracture advancement is confirmed in the dynamic setting as well as in the pressure fluctuations, but there are substantial differences in the frequency contents of the pressure waves in the two loading cases. Comparison between the quasi-static and fully dynamic solutions reveals that the dynamic response gives much more information such as the type of pressure oscillations and related frequencies and should be applied whenever there is a doubt about inertia forces playing a role - the case in most fracturing events. In the absence of direct relevant dynamic tests on saturated media some experimental results on dynamic fracture in dry materials, a fast hydraulic fracturing test and observations from geophysics confirm qualitatively the obtained results such as the type of pressure oscillations and the substantial difference in the behaviour under the two loading cases.
机译: 摘要 我们提供了新的结果,解释了为什么在饱和多孔介质中压裂不是平滑而连续的,而是伴随着流体压力振荡的独特的逐步过程。所有精确的解决方案和几乎所有的数值模型都可以实现平稳的裂缝发展和流体压力演化,而主要来自石油工业的最新实验结果,来自地球物理的观测结果以及针对准静态情况的极少数数值结果确实揭示了逐步现象。我们首先总结这些新的实验以及针对准静态情况的一些数值解。考虑到机械载荷和压力驱动的裂缝,因为它们的行为在压力跳跃的方向上是不同的。然后,基于混合混合理论,利用多孔介质的流体力学模型,探讨了动态压裂过程中裂纹尖端的逐步发展和压力波动。给出了涉及水力压裂和机械载荷的实例的全动态分析。在动态设置以及压力波动中都确认了裂缝的逐步发展,但是在两种载荷情况下,压力波的频率含量存在很大差异。准静态解决方案与完全动态解决方案之间的比较表明,动态响应会提供更多信息,例如压力振荡的类型和相关频率,并且应在怀疑惯性力起作用的情况下应用(大多数压裂情况就是如此)事件。在没有直接相关的饱和介质动态测试的情况下,干燥材料动态断裂的一些实验结果,快速的水力压裂测试和地球物理观测结果定性地证实了所获得的结果,例如压力振荡的类型以及在压力下的行为的实质性差异。两种加载情况。

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