An Accurate Cubic Law for the Upscaling of Discrete Natural Fractures

Xupeng He, M. AlSinan, H. Kwak, H. Hoteit
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引用次数: 1

Abstract

Modeling fluid flow in fractured reservoirs requires an accurate evaluation of the hydraulic properties of discrete fractures. Full Navier-Stokes simulations provide an accurate approximation of the flow within fractures, including fracture upscaling. However, its excessive computational cost makes it impractical. The traditionally used cubic law (CL) is known to overshoot the fracture hydraulic properties significantly. In this work, we propose an alternative method based on the cubic law. We first develop geometric rules based on the fracture topography data, by which we subdivide the fracture into segments and local cells. We then modify the aperture field by incorporating the effects of flow direction, flow tortuosity, normal aperture, and local roughness. The approach is applicable for fractures in 2D and 3D spaces. This paper presented almost all existing CL-based models in the literature, which include more than twenty models. We benchmarked all these models, including our proposed model, for thousands of fracture cases. High-resolution simulations solving the full-physics Navier-Stokes (NS) equations were used to compute the reference solutions. We highlight the behavior of accuracy and limitations of all tested models as a function of fracture geometric characteristics, such as roughness. The obtained accuracy of the proposed model showed the highest for more than 2000 fracture cases with a wide range of tortuosity, roughness, and mechanical aperture variations. None of the existing methods in the literature provide this level of accuracy and applicability. The proposed model retains the simplicity and efficiency of the cubic law and can be easily implemented in workflows for reservoir characterization and modeling.
离散天然裂缝升级的精确三次规律
裂缝性储层的流体流动建模需要对离散裂缝的水力特性进行准确的评价。完整的Navier-Stokes模拟提供了裂缝内流动的精确近似值,包括裂缝升级。然而,其过高的计算成本使其不切实际。众所周知,传统的三次定律(CL)会大大超过裂缝水力特性。在这项工作中,我们提出了一种基于三次定律的替代方法。我们首先根据裂缝形貌数据制定几何规则,据此将裂缝细分为段和局部单元。然后,我们通过结合流动方向、流动扭曲度、法向孔径和局部粗糙度的影响来修改孔径场。该方法适用于二维和三维空间的裂缝。本文介绍了目前文献中几乎所有的基于cl的模型,共计20多个模型。我们对所有这些模型进行了基准测试,包括我们提出的模型,用于数千例骨折病例。采用求解全物理Navier-Stokes (NS)方程的高分辨率模拟计算参考解。我们强调了所有测试模型的精度和局限性作为裂缝几何特征(如粗糙度)的函数的行为。该模型在2000多例具有大范围弯曲度、粗糙度和机械孔径变化的骨折病例中获得了最高的精度。文献中现有的方法都没有提供这种水平的准确性和适用性。所提出的模型保留了三次定律的简单性和效率,可以很容易地在储层表征和建模的工作流程中实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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