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Low-Frequency Dynamic-Stress Effects On Core-Scale Porous Fluid Flow Due To Coupling With Sub-Pore-Scale Particle Interactions

机译:由于耦合与亚孔级粒子相互作用引起的低频动态应力效应核心尺度多孔流体流动

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It has been observed repeatedly that low-frequency (1–500 Hz) seismic stress waves can enhance oil production from depleted reservoirs and contaminant extraction from groundwater aquifers. The physics coupling stress waves to fluid flow behavior in porous media is still poorly understood. Numerous underlying physical mechanisms have been proposed to explain the observations. Core-scale experiments were performed to investigate one of these proposed mechanisms, the coupling of dynamic stress to sub-pore size particle (colloid) interactions with solid surfaces. This is an important mechanism because it can produce profound changes in porous matrix permeability due to either accumulation or release of natural colloids. Core-scale porous flow experiments demonstrated that both natural (in-situ) and artificial (injected) colloids can be released from the pores by applying dynamic stress to sandstone cores at frequencies below 100 Hz. Results are shown for release of in-situ particles from Fontainebleau sandstone induced by applying dynamic stress at 26 Hz.
机译:已经反复观察到,低频(1-500Hz)地震应力波可以增强从地下水含水层的耗尽储层和污染物提取的石油生产。物理耦合应力波到多孔介质中的流体流动行为仍然不知识。已经提出了许多潜在的物理机制来解释观察。进行核心规模的实验以研究这些提出的机制之一,将动态应力与固体表面相互作用的动态应力偶联。这是一种重要的机制,因为它可能由于天然胶体的积累或释放而产生多孔基质渗透性的深刻变化。核心级多孔流动实验证明,天然(原位)和人工(注射的)胶体可以通过在低于100Hz以下频率的频率上向砂岩核施加动力应力来释放。结果显示,通过在26 Hz上施加动态应力,释放来自枫丹白露砂岩的原位颗粒。

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