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多相流中的亚秒级孔隙尺度驱替过程与松弛动力学

Subsecond pore-scale displacement processes and relaxation dynamics in multiphase flow.

作者信息

Armstrong Ryan T, Ott Holger, Georgiadis Apostolos, Rücker Maja, Schwing Alex, Berg Steffen

机构信息

School of Petroleum Engineering, University of New South Wales New South Wales, Sydney, Australia.

Shell Global Solutions International B.V. Rijswijk, Netherlands.

出版信息

Water Resour Res. 2014 Dec;50(12):9162-9176. doi: 10.1002/2014WR015858. Epub 2014 Dec 1.

Abstract

With recent advances at X-ray microcomputed tomography (μCT) synchrotron beam lines, it is now possible to study pore-scale flow in porous rock under dynamic flow conditions. The collection of four-dimensional data allows for the direct 3-D visualization of fluid-fluid displacement in porous rock as a function of time. However, even state-of-the-art fast-μCT scans require between one and a few seconds to complete and the much faster fluid movement occurring during that time interval is manifested as imaging artifacts in the reconstructed 3-D volume. We present an approach to analyze the 2-D radiograph data collected during fast-μCT to study the pore-scale displacement dynamics on the time scale of 40 ms which is near the intrinsic time scale of individual Haines jumps. We present a methodology to identify the time intervals at which pore-scale displacement events in the observed field of view occur and hence, how reconstruction intervals can be chosen to avoid fluid-movement-induced reconstruction artifacts. We further quantify the size, order, frequency, and location of fluid-fluid displacement at the millisecond time scale. We observe that after a displacement event, the pore-scale fluid distribution relaxes to (quasi-) equilibrium in cascades of pore-scale fluid rearrangements with an average relaxation time for the whole cascade between 0.5 and 2.0 s. These findings help to identify the flow regimes and intrinsic time and length scales relevant to fractional flow. While the focus of the work is in the context of multiphase flow, the approach could be applied to many different μCT applications where morphological changes occur at a time scale less than that required for collecting a μCT scan.

摘要

随着X射线微计算机断层扫描(μCT)同步加速器光束线技术的最新进展,现在有可能在动态流动条件下研究多孔岩石中的孔隙尺度流动。四维数据的收集使得能够直接三维可视化多孔岩石中流体-流体驱替随时间的变化。然而,即使是最先进的快速μCT扫描也需要1到几秒才能完成,而在此时间间隔内发生的快得多的流体运动在重建的三维体积中表现为成像伪影。我们提出了一种方法来分析快速μCT过程中收集的二维射线照片数据,以研究40毫秒时间尺度上的孔隙尺度驱替动力学,该时间尺度接近单个海恩斯跳跃的固有时间尺度。我们提出了一种方法来识别观测视野中孔隙尺度驱替事件发生的时间间隔,从而确定如何选择重建间隔以避免流体运动引起的重建伪影。我们进一步在毫秒时间尺度上量化了流体-流体驱替的大小、顺序、频率和位置。我们观察到,在一次驱替事件之后,孔隙尺度的流体分布通过一系列孔隙尺度的流体重新排列松弛到(准)平衡状态,整个序列的平均松弛时间在0.5到2.0秒之间。这些发现有助于确定与分流相关的流动状态以及固有时间和长度尺度。虽然这项工作的重点是在多相流的背景下,但该方法可应用于许多不同的μCT应用,其中形态变化发生的时间尺度小于收集μCT扫描所需的时间尺度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/41a2/4328147/51d54b0cede9/wrcr0050-9162-f1.jpg

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