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Confinement Correction to Mercury Intrusion Capillary Pressure of Shale Nanopores

机译:页岩纳米孔的汞侵入毛细管压力的封闭校正

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摘要

We optimized potential parameters in a molecular dynamics model to reproduce the experimental contact angle of a macroscopic mercury droplet on graphite. With the tuned potential, we studied the effects of pore size, geometry, and temperature on the wetting of mercury droplets confined in organic-rich shale nanopores. The contact angle of mercury in a circular pore increases exponentially as pore size decreases. In conjunction with the curvature-dependent surface tension of liquid droplets predicted from a theoretical model, we proposed a technique to correct the common interpretation procedure of mercury intrusion capillary pressure (MICP) measurement for nanoporous material such as shale. Considering the variation of contact angle and surface tension with pore size improves the agreement between MICP and adsorption-derived pore size distribution, especially for pores having a radius smaller than 5 nm. The relative error produced in ignoring these effects could be as high as 44%—samples that contain smaller pores deviate more. We also explored the impacts of pore size and temperature on the surface tension and contact angle of water/vapor and oil/gas systems, by which the capillary pressure of water/oil/gas in shale can be obtained from MICP. This information is fundamental to understanding multiphase flow behavior in shale systems.
机译:我们在分子动力学模型中优化了潜在参数,以重现宏观汞滴在石墨上的实验接触角。通过调整电位,我们研究了孔径,几何形状和温度对富含有机物的页岩纳米孔中汞滴润湿的影响。汞在圆形孔中的接触角随着孔径的减小而呈指数增加。结合理论模型预测的液滴的曲率相关表面张力,我们提出了一种技术,可校正页岩等纳米多孔材料的水银压入毛细管压力(MICP)测量的通用解释程序。考虑到接触角和表面张力随孔径的变化,改善了MICP和吸附衍生的孔径分布之间的一致性,特别是对于半径小于5 nm的孔径。忽略这些影响而产生的相对误差可能高达44%-包含较小孔的样品的偏差更大。我们还探讨了孔径和温度对水/蒸汽和油气系统的表面张力和接触角的影响,从而可以通过MICP获得页岩中水/油气的毛细压力。此信息对于了解页岩系统中的多相流动行为至关重要。

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