A New Local-Global Upscaling Method for Flow Simulation in Naturally Fractured Reservoirs

Xupeng He, M. AlSinan, H. Kwak, H. Hoteit
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Abstract

Explicit modeling of discrete fractures at the field scale is computationally intensive, and therefore, upscaling the fractures in the context of an equivalent continuum model is indispensable for field-scale simulations. This work introduces a new upscaling technique based on the local-global multiple-boundary (LG-MB) upscaling method for fluid flow in naturally fractured reservoirs. We extend the commonly-used local-global (LG) upscaling method by introducing a new approach to compute the fluid fluxes within the fractures crossing the grid-block boundaries. This method is based on the multiple-boundary (MB) approach applied within a local-global upscaling procedure. The global coarse-scale simulations are implemented to determine the boundary conditions for the calculations of local upscaled permeability. The procedure allows repeating the process to assure consistency between the global and local calculations. We implement the multi-point flux approximation (MPFA) finite volume method coupled with embedded discrete-fracture model within the MRST framework. We then verify the proposed LG-MB upscaling technique by comparing it with the reference fine-scale solutions and other existing local and local-global upscaling techniques. Results show that the proposed approach provides pronounced accuracy compared to local-based upscaled models with minor computational overhead. Compared to traditional local-global upscaling techniques, it provides more computational accuracy yet with the same efficiency. The superiority of the proposed LG-MB upscaling technique is attributed to two factors related to 1) the multiple-boundary technique to capture the flow behavior with high anisotropy from fractures non-alignment with the grid; 2) the use of local-global approach to accurately obtain the real flow boundary conditions. This work introduces a new upscaling method for flow simulation in naturally fractured reservoirs. We demonstrate its applicability in field applications and its superiority to existing upscaling methods. This method is accurate and straightforward and can be implemented within existing upscaling workflows.
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天然裂缝性油藏流动模拟的局部-全局升级方法
在现场尺度上对离散裂缝进行显式建模需要大量的计算,因此,在等效连续体模型的背景下对裂缝进行放大是现场尺度模拟必不可少的。介绍了一种基于局部-全局多边界(LG-MB)方法的天然裂缝性储层流体流动放大技术。本文扩展了常用的局部-全局(LG)上尺度法,引入了一种新的方法来计算跨越网格块边界的裂缝内的流体通量。该方法基于局部-全局升级过程中应用的多边界方法。为了确定局部上尺度渗透率计算的边界条件,采用了全局粗尺度模拟。该过程允许重复该过程,以确保全局和局部计算之间的一致性。我们在MRST框架内实现了多点通量近似有限体积法与嵌入的离散断裂模型耦合。然后,我们通过将其与参考精细尺度解决方案以及其他现有的局部和局部-全局升级技术进行比较,验证了所提出的LG-MB升级技术。结果表明,与基于局部的升级模型相比,该方法具有明显的精度,且计算开销较小。与传统的局部-全局升级技术相比,该方法具有更高的计算精度和相同的效率。LG-MB放大技术的优越性主要体现在两个方面:1)采用多边界技术捕捉裂缝不与网格对齐的高各向异性流动特性;2)采用局部-全局方法精确地求得实际流动边界条件。本文介绍了一种新的裂缝性储层流动模拟升级方法。论证了该方法在现场应用中的适用性,以及相对于现有的放大方法的优越性。该方法准确、直观,可在现有的升级工作流程中实现。
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