An Integrated Modeling Framework for Simulating Complex Transient Flow in Fractured Reservoirs with 3D High-Quality Grids

Hui Liu, X. Liao, Knut-Andreas Lie, Ø. Klemetsdal, K. Bao, Xiaoliang Zhao, A. Johansson, X. Raynaud
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Abstract

Modeling near-well transient flow with complex 3D fracture networks poses several challenges: the multiscale nature (millimeters to kilometers), long and deviating well trajectories, intricate fracture networks with fracture-fracture and fracture-well intersections, and high level of reservoir heterogeneities. We address these difficulties by proposing a comprehensive methodology for meshing, discretizing, and simulating transient flow in complex 3D fracture networks based on discrete fracture-matrix models. Our framework consists of three parts: (i) Given deviating wells and planar or nonplanar fractures and faults, we construct highquality 3D grids conforming to wells, hydraulic fractures, faults, and dominating natural fractures. We ensure sufficient mesh quality near important features using transfinite interpolation near wells and hydraulic fractures, combined with adaptive refinement in regions of interest. (ii) With the generated grid, we discretize the governing equations with a fully implicit finite- volume formulation with an inner-boundary well model and discrete fracture model. (iii) Finally, we analyze the results using suitable visualization tools, both for pressure-transient curves and 3D matrix/fracture data. The framework enables high-resolution numerical modeling of transient flow with complex fracture networks in 3D. We demonstrate the capacities through simple validation cases with comparisons against an industry-standard commercial well-testing software but also present highly complex cases with long and deviating well trajectories and highly detailed fracture networks. We present and analyze flow-transient behavior coupling the wellbore, the fracture network, and the matrix. We also present an approach to reliably diagnose complex multiple flow regimes on the pressure-transient curves combined with different-scale spatial pressure distribution. Comparison against the commercial software indicates that our framework does not introduce adverse grid-orientation effects for non-K-orthogonal grids which is able to robustly handle the details for fracture-network heterogeneities in 3D reservoirs. Overall, our framework is robust for simulating and analyzing realistic second-level transient effects and short-term well performance with complex fracture networks and heterogeneities. Detailed description of the 3D fracture networks, and accurate simulation of the near-well transient flow behavior can be achieved, which provides confidence to interpret the dynamic flow data at different scales and observe transport mechanisms in unconventional fractured reservoirs with multiple levels of heterogeneity.
基于三维高质量网格的裂缝性储层复杂瞬态流动综合建模框架
利用复杂的三维裂缝网络对近井瞬态流动建模提出了几个挑战:多尺度(毫米到公里)、长而偏斜的井眼轨迹、具有裂缝-裂缝和裂缝-井相交的复杂裂缝网络,以及油藏的高度非均质性。为了解决这些困难,我们提出了一种基于离散裂缝矩阵模型的综合方法,用于网格划分、离散化和模拟复杂3D裂缝网络中的瞬态流动。我们的框架由三部分组成:(i)给定斜井、平面或非平面裂缝和断层,我们构建符合井、水力裂缝、断层和主要天然裂缝的高质量三维网格。我们在井和水力裂缝附近使用超限插值,结合感兴趣区域的自适应细化,确保在重要特征附近有足够的网格质量。(ii)利用生成的网格,将控制方程离散化为具有内边界井模型和离散裂缝模型的全隐式有限体积公式。(iii)最后,我们使用合适的可视化工具分析结果,包括压力瞬态曲线和3D矩阵/裂缝数据。该框架能够实现具有复杂裂缝网络的瞬态流三维高分辨率数值模拟。我们通过简单的验证案例,并与行业标准的商业试井软件进行比较,展示了其能力,同时也展示了具有长井轨迹和斜井轨迹以及非常详细的裂缝网络的高度复杂的案例。我们提出并分析了井筒、裂缝网络和基质耦合的流动瞬态行为。我们还提出了一种结合不同尺度空间压力分布的压力瞬变曲线可靠诊断复杂多流型的方法。与商业软件的对比表明,我们的框架不会对非k正交网格引入不利的网格定向效应,能够稳健地处理三维储层裂缝网络非均质性的细节。总的来说,我们的框架对于模拟和分析具有复杂裂缝网络和非均质性的实际二级瞬态效应和短期井动态具有鲁棒性。三维裂缝网络的详细描述和近井瞬态流动行为的精确模拟,为解释不同尺度的动态流动数据和观察具有不同非均质性水平的非常规裂缝性储层的输运机制提供了信心。
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