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Pore-Scale Experimental Investigation of Two-Phase Flow Through Fractured Porous Media

机译:裂隙多孔介质两相流的孔隙尺度实验研究

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摘要

We present the results of a systematic pore-scale experimental investigation of two-phase oil/brine flow through a miniature water-wet, fractured sandstone core sample. X-ray microtomography is employed to generate three-dimensional fluid occupancy maps within a rough-walled fracture and its neighboring rock matrix during drainage and imbibition flow experiments. Several different imbibition flow conditions were created by changing brine flow rate, fracture aperture field, and interfacial tension between the fluids. These maps along with steady-state pressure drop data are then used to shed light on the dominant flow mechanisms and preferential flow paths through the matrix and fracture domains as well as fluid transfer between them during the imbibition processes. Depending on the fracture aperture properties and the magnitude of the local capillary pressures that are established under varying flow conditions, transport of the wetting phase across the hybrid matrix-fracture medium is governed by flow through wetting layers of brine on fracture walls (fracture layer flow), center of the fracture (fracture bulk flow), and brine-filled pores within the matrix. The hydraulic conductivity through these conduits is regulated by the medium as it identifies a combined flow path with minimum pressure drop from the inlet to the outlet of the system. The resulting balance determines the magnitude of fluid transfer experienced by the neighboring matrix and ultimate oil recovery as a result.
机译:我们介绍了通过微型水湿裂缝性砂岩岩心样品进行的两相油/盐水流系统孔隙度实验研究的结果。 X射线显微断层照相术用于在排水和吸水流实验中在粗糙壁裂缝及其邻近的岩石基质中生成三维流体占有图。通过改变盐水流速,裂隙孔径场和流体之间的界面张力,创建了几种不同的吸收流动条件。然后,这些图与稳态压降数据一起用于阐明主要的流动机制和通过基质和裂缝域的优先流动路径,以及在吸收过程中它们之间的流体传输。根据裂缝口的性质和在不同流动条件下建立的局部毛细管压力的大小,润湿相在混合基质-裂缝介质中的传输受裂缝壁上盐水浸润层的流动(裂缝层流)的控制。 ),裂缝中心(裂缝整体流量)和基质中充满盐水的孔隙。通过这些导管的水力传导率受到介质的调节,因为它确定了从系统的入口到出口的压降最小的组合流路。最终的平衡决定了相邻基质所经历的流体输送的幅度以及最终的采油量。

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  • 来源
    《Water resources research》 |2018年第5期|3602-3631|共30页
  • 作者单位

    Univ Wyoming, Dept Petr Engn, Laramie, WY 82071 USA;

    Univ Wyoming, Dept Petr Engn, Laramie, WY 82071 USA;

    Thermo Fisher Sci, VSG, Houston, TX USA;

    Univ Wyoming, Dept Petr Engn, Laramie, WY 82071 USA;

    EXPEC ARC, Saudi Aramco, Saudi Arabia;

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  • 正文语种 eng
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  • 入库时间 2022-08-18 03:38:36

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