A Hybrid Embedded Discrete Fracture Model and Dual-Porosity, Dual-Permeability Workflow for Hierarchical Treatment of Fractures in Practical Field Studies

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
M. Hui, Bradley T. Mallison, Sunil G. Thomas, Pierre Muron, Matthieu Rousset, E. Earnest, T. Playton, H. Vo, C. Jensen
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引用次数: 2

Abstract

Natural fracture systems comprise numerous small features and relatively few large ones. At field scale, it is impractical to treat all fractures explicitly. We represent the largest fractures using an embedded discrete fracture model (EDFM) and account for smaller ones using a dual-porosity, dual-permeability (DPDK) idealized representation of the fracture network. The hybrid EDFM + DPDK approach uses consistent discretization schemes and efficiently simulates realistic field cases. Further speedup can be obtained using aggregation-based upscaling. Capabilities to visualize and post-process simulation results facilitate understanding for effective management of fractured reservoirs. The proposed approach embeds large discrete fractures as EDFM within a DPDK grid (which contains both matrix and idealized fracture continua for smaller fractures) and captures all connections among the triple media. In contrast with existing EDFM formulations, we account for discrete fracture spacing within each matrix cell via a new matrix-fracture transfer term and use consistent assumptions for classical EDFM and DPDK calculations. In addition, the workflow enables coarse EDFM representations using flow-based cell-aggregation upscaling for computational efficiency. Using a synthetic case, we show that the proposed EDFM + DPDK approach provides a close match of simulation results from a reference model that represents all fractures explicitly, while providing runtime speedup. It is also more accurate than previous standard EDFM and DPDK models. We demonstrate that the matrix-fracture transfer function agrees with flow-based upscaling of high-resolution fracture models. Next, the automated workflow is applied to a waterflooding study for a giant carbonate reservoir, with an ensemble of stochastic fracture realizations. The overall workflow provides the computational efficiency needed for performance forecasts in practical field studies, and the 3D visualization allows for the derivation of insights into recovery mechanisms. Finally, we apply a finite-volume tracer-based flux post-processing scheme on simulation results to analyze production allocation and sweep for understanding expected waterflood performance.
一种混合嵌入离散裂缝模型和双重孔隙度、双重渗透率的分层裂缝处理工作流程
天然裂缝系统包括许多小特征和相对较少的大特征。在现场规模上,明确处理所有裂缝是不切实际的。我们使用嵌入式离散裂缝模型(EDFM)表示最大的裂缝,使用双孔隙度、双渗透率(DPDK)理想化的裂缝网络表示较小的裂缝。混合EDFM + DPDK方法采用一致的离散化方案,有效地模拟了实际的现场情况。使用基于聚合的升级可以获得进一步的加速。可视化和后处理模拟结果的能力有助于理解裂缝性油藏的有效管理。该方法将大型离散裂缝作为EDFM嵌入到DPDK网格中(包含矩阵和较小裂缝的理想裂缝连续体),并捕获三重介质之间的所有连接。与现有的EDFM公式相比,我们通过一个新的矩阵-裂缝传递项来考虑每个矩阵单元内的离散裂缝间距,并在经典EDFM和DPDK计算中使用一致的假设。此外,该工作流使用基于流的细胞聚集提升计算效率来实现粗EDFM表示。通过一个综合案例,我们证明了EDFM + DPDK方法与参考模型的模拟结果非常接近,该模型明确地表示了所有裂缝,同时提供了运行时加速。它也比以前的标准EDFM和DPDK模型更准确。我们证明了基质-裂缝传递函数与基于流量的高分辨率裂缝模型的升级一致。接下来,将自动化工作流程应用于大型碳酸盐岩储层的水驱研究,并实现了一系列随机裂缝。整个工作流程提供了在实际现场研究中进行性能预测所需的计算效率,并且3D可视化允许推导对恢复机制的见解。最后,我们对模拟结果应用了基于有限体积示踪剂的通量后处理方案来分析产量分配和扫描,以了解预期的注水性能。
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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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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