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Effects of Foam Microbubbles on Electrical Resistivity and Capillary Pressure of Partially Saturated Porous Media

机译:泡沫微泡对部分饱和多孔介质电阻率和毛细管压力的影响

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摘要

Laboratory measurements of capillary pressure ( ) and the electrical resistivity index ( ) of reservoir rocks are used to calibrate well logging tools and to determine reservoir fluid distribution. Significant studies on the methods and factors affecting these measurements in rocks containing oil, gas, and water are adequately reported in the literature. However, with the advent of chemical enhanced oil recovery (EOR) methods, surfactants are mixed with injection fluids to generate foam to enhance the gas injection process. Foam is a complex and non-Newtonian fluid whose behavior in porous media is different from conventional reservoir fluids. As a result, the effect of foam on and the reliability of using known rock models such as the Archie equation to fit experimental resistivity data in rocks containing foam are yet to be ascertained. In this study, we investigated the effect of foam on the behavior of both and curves in sandstone and carbonate rocks using both porous plate and two-pole resistivity methods at ambient temperature. Our results consistently showed that for a given water saturation ( ), the of a rock increases in the presence of foam than without foam. We found that, below a critical , the resistivity of a rock containing foam continues to rise rapidly. We argue, based on knowledge of foam behavior in porous media, that this critical represents the regime where the foam texture begins to become finer, and it is dependent on the properties of the rock and the foam. Nonetheless, the Archie model fits the experimental data of the rocks but with resulting saturation exponents that are higher than conventional gas–water rock systems. The degree of variation in the saturation exponents between the two fluid systems also depends on the rock and fluid properties. A theory is presented to explain this phenomenon. We also found that foam affects the saturation exponent in a similar way as oil-wet rocks in the sense that they decrease the cross-sectional area of water available in the pores for current flow. Foam appears to have competing and opposite effects caused by the presence of clay, micropores, and conducting minerals, which tend to lower the saturation exponent at low . Finally, the curve is consistently lower in foam than without foam for the same .
机译:毛细管压力()的实验室测量和储层岩石的电阻率指数()用于校准井测井工具并确定储层液体分布。在文献中,有关影响含油,气体和水岩石中这些测量的方法和因素的重大研究。然而,随着化学增强的溢油(EOR)方法的出现,表面活性剂与注射液混合以产生泡沫以增强气体注入过程。泡沫是一种复杂的非牛顿液体,其在多孔介质中的行为与常规储液流体不同。结果,尚未确定泡沫岩石型和使用诸如Archie方程的可靠性以含有泡沫的岩石中的实验电阻率数据的效果。在这项研究中,我们研究了在环境温度下使用多孔板和双极电阻率方法对砂岩和碳酸盐岩中的两种和曲线行为的影响。我们的结果一致地表明,对于给定的水饱和度(),岩石在泡沫存在下增加而不是没有泡沫。我们发现,低于至关重要的,含有泡沫的岩石的电阻率继续迅速上升。我们认为,基于多孔介质中的泡沫行为的知识,这关键代表泡沫纹理开始变得更精细的制度,并且取决于岩石和泡沫的性质。尽管如此,Archie模型适合岩石的实验数据,但是由此产生的饱和指数高于传统的气水岩系统。两个流体系统之间的饱和指数的变化程度也取决于岩石和流体性质。提出了一个理论来解释这种现象。我们还发现泡沫以与油湿岩类似的方式影响饱和度指数,从而它们减少了孔中可用的水的横截面区域进行电流。泡沫似乎具有粘土,微孔和导电矿物质引起的竞争和相反的影响,这往往会降低低温。最后,曲线在泡沫中始终低于没有泡沫的泡沫。

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