非均质多孔介质中常驻流体的自发驱替

Shabina Ashraf, J. Phirani
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引用次数: 0

摘要

表面张力驱动的一种流体取代另一种流体的流动在微流体诊断装置、芯片实验室装置和油藏流动中具有重要意义。在均匀多孔介质中,优先润湿相取代现有非润湿相的自发浸渍是遵循扩散动力学的。然而,在非均质多孔介质中,窄孔和宽孔之间的水动力相互作用显著改变了浸渍行为。以往的研究表明,与均匀多孔介质的扩散动力学预测相反,流体界面的吸进导致了狭窄的孔隙。这是由于窄孔中较高的吸力压力将流体从宽孔中吸出。在非均质多孔介质中,孔隙的流体性质和相对于其他孔隙的相对流动性质对非润湿流体驱替的影响尚不清楚。在目前的工作中,我们建立了一个准一维的润滑近似模型,用于预测非均质多孔介质中的自发吸胀。我们探索了非均质多孔介质中所有可能的相对流体性质和流动性质,并表明我们的模型能够预测所有情况下的流动行为。本文还介绍了自发渗吸实验的结果,结果与模型一致。实验结果表明,与一维模型预测的结果一致,两相界面在窄孔中发展较快。该结果对于预测和控制非均质多孔介质中的流动特性具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spontaneous Displacement of Resident Fluid in Heterogeneous Porous Medium
Surface tension driven flow in which one fluid displaces another is of importance in microfluidic devices for diagnostics, lab on chip devices and flow in oil reservoirs. Spontaneous impregnation of a preferentially wetting phase displacing an existing non-wetting phase in a homogeneous porous medium is known to follow diffusive dynamics. However, in a heterogeneous porous medium the hydrodynamic interaction between the narrow and the wide pores significantly alters the impregnation behavior. Previous studies have shown that the imbibing fluid interface leads in the narrow pores contrary to the predictions from the diffusive dynamics of homogeneous porous medium. This is due to the higher suction pressure in the narrow pores which draw fluid from the wide pores. The effect of fluid properties and relative flow properties of the pores with respect to other pores on the non-wetting fluid displacement in the heterogeneous porous medium is still unknown. In the current work, we develop a quasi one-dimensional, lubrication approximation model, which predicts the spontaneous imbibition in a heterogeneous porous medium. We explore all the possible relative fluid properties and flow properties of the layers in the heterogeneous porous medium and show that our model is able to predict the flow behavior in all the cases. We also present the results of the spontaneous imbibition experiments, which agree with our model. The experiments show that the two phase interface progresses faster in the narrow pores as predicted by the one-dimensional model. The result is important for predicting and controlling the flow behavior in a heterogeneous porous medium.
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