裂缝性地热储层的自适应动态多级模拟

Mousa HosseiniMehr , Cornelis Vuik , Hadi Hajibeygi
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引用次数: 3

摘要

提出了一种代数动态多级(ADM)方法,用于非均质裂缝性地热储层流动和热输运的全耦合模拟。使用基于投影的嵌入式离散方法(pEDFM)对裂缝进行显式建模,该方法准确地表示了具有通用电导率值的裂缝,从屏障到高导电歧管。使用完全隐式格式来获得包括质量和能量平衡方程的耦合离散系统,该系统在精细尺度水平上具有两个主要未知数(即压力和温度)。然后,针对矩阵和裂缝,开发了ADM方法,将精细尺度离散系统映射到动态多级粗网格。为了获得ADM图,为矩阵以及所有粗化级别的每个裂缝构建了多级多尺度粗网格。在这种分层嵌套网格上,在模拟开始时局部求解多级多尺度基函数(用于流量和热量)。它们在ADM模拟过程中使用,以在存在参数异质性的情况下实现精确的多级系统。ADM模拟的分辨率是使用用户定义的阈值基于解梯度(即前沿跟踪技术)动态定义的。ADM映射是使用所谓的ADM延拓和限制算子对所有未知项进行代数映射的。研究了各种具有均质和非均质渗透率图的二维和三维裂缝测试案例。结果表明,ADM能够通过仅使用一小部分精细尺度的网格单元来精确地模拟耦合质量热传输。因此,它有望为模拟大型和真实油田规模的裂缝性地热储层提供一种有效的方法。本文的所有软件开发都可在https://gitlab.com/DARSim2simulator.
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adaptive dynamic multilevel simulation of fractured geothermal reservoirs

An algebraic dynamic multilevel (ADM) method for fully-coupled simulation of flow and heat transport in heterogeneous fractured geothermal reservoirs is presented. Fractures are modeled explicitly using the projection-based embedded discrete method (pEDFM), which accurately represents fractures with generic conductivity values, from barriers to highly-conductive manifolds. A fully implicit scheme is used to obtain the coupled discrete system including mass and energy balance equations with two main unknowns (i.e., pressure and temperature) at fine-scale level. The ADM method is then developed to map the fine-scale discrete system to a dynamic multilevel coarse grid, independently for matrix and fractures. To obtain the ADM map, multilevel multiscale coarse grids are constructed for matrix as well as for each fracture at all coarsening levels. On this hierarchical nested grids, multilevel multiscale basis functions (for flow and heat) are solved locally at the beginning of the simulation. They are used during the ADM simulation to allow for accurate multilevel systems in presence of parameter heterogeneity. The resolution of ADM simulations is defined dynamically based on the solution gradient (i.e. front tracking technique) using a user-defined threshold. The ADM mapping occurs algebraically using the so-called ADM prolongation and restriction operators, for all unknowns. A variety of 2D and 3D fractured test cases with homogeneous and heterogeneous permeability maps are studied. It is shown that ADM is able to model the coupled mass-heat transport accurately by employing only a fraction of fine-scale grid cells. Therefore, it promises an efficient approach for simulation of large and real-field scale fractured geothermal reservoirs. All software developments of this paper is publicly available at https://gitlab.com/DARSim2simulator.

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来源期刊
Journal of Computational Physics: X
Journal of Computational Physics: X Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
6.10
自引率
0.00%
发文量
7
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