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首页> 外文期刊>Advances in Water Resources >Accurate geothermal and chemical dissolution simulation using adaptive mesh refinement on generic unstructured grids
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Accurate geothermal and chemical dissolution simulation using adaptive mesh refinement on generic unstructured grids

机译:在通用非结构化网格上使用自适应网格细化准确的地热和化学溶解模拟

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摘要

A coupled description of flow and thermal-reactive transport is spanning a wide range of scales in space and time, which often introduces a significant complexity for the modelling of such processes. Subsurface reservoir heterogeneity with complex multi-scale features increases the modelling complexity even further. Traditional multiscale techniques are usually focused on the accuracy of the pressure solution and often ignore the transport. Improving the transport solution can however be quite significant for the performance of the simulation, especially in complex applications related to thermal-compositional flow. The use of an Adaptive Mesh Refinement enables the grid to adapt dynamically during the simulation, which facilitates the efficient use of computational resources. This is especially important in applications with thermal flow and transport where the region requires high-resolution calculations as often localized in space. In this work, the aim is to develop an Adaptive Mesh Refinement framework for geothermal reservoir simulation. The approach uses a multi-level connection list and can be applied to fully unstructured grids. The adaptivity of the grid in the developed framework is based on a hierarchical connectivity list. First, the fine-scale model is constructed, which accurately approximates all reservoir heterogeneity. Next, a global flow-based upscaling is applied, where an unstructured partitioning of the original grid is created. Once the full hierarchy of levels is constructed, the simulation is started at the coarsest grid. Grid space refinement criteria is based on the local changes and can be adjusted for specific models and governing physics. The multi-level connectivity lists are redefined at each timestep and used as an input for the next. The developed Adaptive Mesh Refinement framework was implemented in Delft Advanced Research Terra Simulator which uses the Operator-Based Linearization technique. The performance of the proposed approach is illustrated for several challenging geothermal applications of practical interest.
机译:流动和热反应传输的耦合描述是在空间和时间的各种尺度范围内,这通常会引入这种过程的建模的显着复杂性。具有复杂多尺度特征的地下储层异质性甚至进一步增加了建模复杂性。传统的多尺度技术通常集中在压力解决方案的准确性,并且通常忽略运输。然而,改善运输溶液对于模拟性能非常重要,尤其是与热成分流动有关的复杂应用。使用自适应网格细化使得电网能够在模拟期间动态调整,这有利于有效地使用计算资源。这在具有热流和运输的应用中尤为重要,其中该区域需要高分辨率计算,经常在空间中定位。在这项工作中,目的是为地热储层模拟开发一个自适应网格细化框架。该方法使用多级连接列表,并且可以应用于完全非结构化的网格。在发达框架中的网格的适应性基于分层连接列表。首先,构造精细尺度模型,其精确地近似于所有储层异质性。接下来,应用全局流动的Upscaling,其中创建了原始网格的非结构化划分。构造完整层次的完整层次后,在统一网格中启动模拟。网格空间细化标准基于本地变化,可以针对特定模型和管理物理进行调整。多级连接列表在每个时间步骤中重新定义,并用作下一个的输入。开发的自适应网格细化框架是在代尔夫特高级研究Terra模拟器中实现的,它采用了基于操作员的线性化技术。拟议方法的性能被说明了若干具有挑战性的实际兴趣的地热应用。

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