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Characterizing flow in oil reservoir rock using SPH: Absolute permeability

机译:使用SPH表征油藏岩石中的流动:绝对渗透率

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摘要

In this paper, a three-dimensional smooth particle hydrodynamics (SPH) simulator for modeling grain scale fluid flow in porous rock is presented. The versatility of the SPH method has driven its use in increasingly complex areas of flow analysis, including flows related to permeable rock for both groundwater and petroleum reservoir research. While previous approaches to such problems using SPH have involved the use of idealized pore geometries (cylinder/sphere packs etc), in this paper we detail the characterization of flow in models with geometries taken from 3D X-ray microtomographic imaging of actual porous rock; specifically 25.12 % porosity dolomite. This particular rock type has been well characterized experimentally and described in the literature, thus providing a practical 'real world' means of verification of SPH that will be key to its acceptance by industry as a viable alternative to traditional reservoir modeling tools. The true advantages of SPH are realized when adding the complexity of multiple fluid phases, however, the accuracy of SPH for single phase flow is, as yet, under developed in the literature and will be the primary focus of this paper. Flow in reservoir rock will typically occur in the range of low Reynolds numbers, making the enforcement of no-slip boundary conditions an important factor in simulation. To this end, we detail the development of a new, robust, and numerically efficient method for implementing no-slip boundary conditions in SPH that can handle the degree of complexity of boundary surfaces, characteristic of an actual permeable rock sample. A study of the effect of particle density is carried out and simulation results for absolute permeability are presented and compared to those from experimentation showing good agreement and validating the method for such applications.
机译:本文提出了一种用于模拟多孔岩石中颗粒尺度流体流动的三维光滑粒子流体动力学(SPH)仿真器。 SPH方法的多功能性促使其在日益复杂的流量分析领域中使用,包括与用于地下水和石油储层研究的可渗透岩石有关的流量。尽管以前使用SPH解决此类问题的方法涉及使用理想的孔隙几何形状(圆柱/球状填充物等),但在本文中,我们详细介绍了具有几何形状的模型中的流动特征,这些模型取自实际多孔岩石的3D X射线显微断层成像;特别是25.12%的孔隙度白云石。这种特殊的岩石类型已经在实验中得到了很好的表征,并在文献中进行了描述,从而提供了一种实用的“真实世界”验证SPH的方法,这将成为SPH被工业界接受为传统储层建模工具的可行替代方案的关键。当增加多个流体相的复杂度时,SPH的真正优势得以实现,但是,单相流的SPH精度目前仍未在文献中得到开发,将成为本文的重点。储层岩石中的流动通常发生在低雷诺数范围内,这使得无滑移边界条件的实施成为模拟中的重要因素。为此,我们详细介绍了在SPH中实现防滑边界条件的一种新的,健壮的并且在数值上有效的方法,该方法可以处理边界面的复杂程度以及实际渗透性岩石样品的特征。对颗粒密度的影响进行了研究,并给出了绝对渗透率的模拟结果,并将其与来自实验的结果进行了比较,结果表明一致性好,并验证了这种方法的应用。

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