多尺度裂缝多孔介质中单相非线性流动平流-扩散过程的多连续统新模型

Richard Owusu, Adu Sakyi, Peter Amoako-Yirenkyi, I. Dontwi
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引用次数: 0

摘要

近十年来,裂缝性多孔介质的建模与模拟取得了很大的发展,但由于裂缝的多尺度性、区域非均质性以及裂缝的存在导致的高流速和高渗透率导致的流场非线性,仍然面临着很大的挑战和困难。因此,模拟受平流和扩散影响的流体在裂缝多孔介质研究中的运移成为一个普遍问题,这也是本研究试图解决的问题。在本文中,我们通过一种升级技术研究了多尺度天然裂缝储层中的非达西流体输运。建立了表征三相多尺度裂缝性多孔介质中压力分布的宏观平均方程,该方程由基质和长度尺度分别为m和m的2尺度裂缝网络组成。由此产生的宏观模型具有交叉平流和扩散项,用于解释相互作用域之间的诱导通量,以及依赖于具有平流和扩散性质的域的物理和几何性质的质量传递函数。该模型还具有有效的扩散和平流系数,可以考虑粘度、流体密度和流速等储层特性。通过数值模拟,观察到典型的天然裂缝多孔介质的径向、水平-线性流动行为以及瞬态和准稳态流动模式。该研究结果将为研究裂缝性多孔介质提供可靠的工具,也有助于更好地理解裂缝性储层的流动动力学。
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A New Multicontinuum Model for Advection-Diffusion Process of Single-Phase Nonlinear Flow in a Multiscale Fractured Porous Media
Fractured porous media modeling and simulation has seen significant development in the past decade but still pose a great challenge and difficulty due to the multiscale nature of fractures, domain heterogeneity, and the nonlinear flow fields due to the high flow velocity and permeability resulting from the presence of fractures. Therefore, modeling fluid transport that is influenced by both advection and diffusion in fractured porous media studies becomes a generic problem, which this study seeks to address. In this paper, we present a study on non-Darcian fluid transport in multiscale naturally fractured reservoirs via an upscaling technique. An averaged macroscopic equation representing pressure distribution in a three-phase multiscale fractured porous medium was developed, consisting of the matrix and a 2-scale fractured network of length-scales ℓ m and ℓ M . The resulting macroscopic model has cross-advective and diffusive terms that account for induced fluxes between the interacting domains, as well as a mass transfer function that is dependent on both physical and geometric properties of the domain, with both advective and diffusive properties. This model also has effective diffusive and advective coefficients that account for reservoir properties such as viscosity, fluid density, and flow velocity. From the numerical simulation, a radial, a horizontal-linear flow behavior, and a transient and quasi-steady-state flow regime that is typical of naturally fractured porous media was observed. The findings of this study will provide researchers a reliable tool to study fractured porous media and can also help for better understanding of the dynamics of flow in fractured reservoirs.
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