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The influence of micro-porosity on drainage relative permeability using digital core analysis

机译:用数字岩心分析对微孔隙度对排水相对渗透率的影响

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摘要

High resolution images acquired from X-ray micro-tomography provide 3D pore geometry on which flow and transport properties can be computed. However, these images exhibit limited resolution in particular if field of view needs to be optimised at the same time. Constrained by the image resolution, the pore space is partitioned into macro-pores (resolvable porosity) and micro-pores, which are below the image resolution. The importance of micro-pores in fluid flow and solute transport has often been ignored. In this study, we quantify and couple the effect of sub-resolution pores into larger pores for different porous media with varying amount of micro- to macro-porosity. Both single phase and two-phase flow is considered.Gaussian random fields (GRF) and particle based models are combined to generate heterogeneous model structures. The effect of micro-porosity on fluid flow is first examined through a critical length analysis and then confirmed using a flux analysis technique on the fully resolved pore space. Unified Brinkman equation is then solved to facilitate the coupling of Stokes and Darcy equations in the macro-phase and homogenised micro-phase.For single phase flow in 3D model structures, the results highlight the significance of micro-pores on the fluid flow especially when macro-pores are just above the percolation threshold. The agreement between fine solution and upscaled solution, in which micro-porous region is homogenised and coupled with macro-pores, is excellent.For two-phase flow simulations, a pore morphology based approach is implemented to simulate the drainage process and to obtain fluid distributions. While the effect of micro-porosity on the effective permeability of the wetting phase is more evident at lower saturations, the error associated with its exclusion is still significant at high wetting phase saturations. The results also prove that the proposed upscaling approach is superior compared to upscaling through the Laplace equation.Apart from the application for carbonates, which are well-known for their micro-porosity signatures, the approach proposed here might be applicable for image-based computation of permeability in unconventional reservoir rocks where multiple length scales coexist.
机译:从X射线断层摄影术获得的高分辨率图像提供了3D孔几何形状,可以在其上计算流量和传输特性。但是,这些图像显示的分辨率有限,特别是在需要同时优化视场的情况下。受图像分辨率的限制,孔隙空间被划分为低于图像分辨率的大孔(可分辨孔隙率)和微孔。微孔在流体流动和溶质传输中的重要性经常被忽略。在这项研究中,我们将不同分辨率的微孔到大孔的不同孔隙度介质的亚分辨率孔隙的影响量化并耦合到较大的孔隙中。同时考虑了单相和两相流。结合高斯随机场(GRF)和基于粒子的模型以生成异构模型结构。首先通过临界长度分析检查微孔对流体流动的影响,然后使用通量分析技术对完全分辨的孔隙空间进行确认。然后求解统一的Brinkman方程,以促进宏观相和均质微相中Stokes和Darcy方程的耦合。对于3D模型结构中的单相流动,结果突出了微孔对流体流动的重要性,尤其是当大孔刚好高于渗滤阈值。细溶液和高档溶液之间的一致性很好,微孔区域被均匀化并与大孔耦合。对于两相流模拟,采用基于孔形态的方法来模拟排水过程并获得流体分布。尽管在较低的饱和度下微孔对润湿相有效渗透率的影响更为明显,但在较高的润湿相饱和度下,与微孔的排斥相关的误差仍然很大。结果也证明,与通过拉普拉斯方程式进行的放大相比,提出的放大方法要优越。除了碳酸盐的应用(以其微孔特征而闻名)之外,此处提出的方法可能适用于基于图像的计算共存多个尺度的非常规储集层岩石的渗透率

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