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Parallel Unstructured Solver Methods for Complex Giant Reservoir Simulation

机译:复杂巨型储层模拟的并联非结构化求解器方法

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The major issues for parallel solver in a modern reservoir simulator are robustness, scalability, efficiency, and flexibility. There is significant interest in running fast field- scale simulation for complex giant Middle-East reservoirs which will require tens to hundreds of millions of grid cells to give reasonable resolution. At the same time, significant geologic complexity will require the treatment of dual permeability regions, faulting and fractures, and high variations of reservoir and fluid properties. Of course, the methods should also work well for extracted sector simulation with local grid refinements in both the structured and unstructured discretization. The preconditioning methods considered in this work include both the single-stage and multistage frameworks. In the single-stage framework, a novel method in addition to the well-known variants of incomplete LU factorizations [ILU0, ILU(k), and ILUT] is considered. The new method is a highly parallel method which in this paper will be referred to as the unstructured line solve power series (LSPS) method. The method will be discussed and contrasted in light of key issues for parallel linear solvers. The unstructured LSPS has certain interesting properties in the parallel construct which makes it a highly effective component. The multistage method researched in this work is of the constraint pressure residual (CPR) framework. The method uses approximate pressure solve as the first stage preconditioning to the full system preconditioning. A number of original adaptations based on this concept were researched. Here, the use of the parallel algebraic multigrid (AMG) method and other single-level methods mentioned above in combinations within the multistage CPR framework were explored. Certain methods constructed in this way are found to be highly efficient, scalable, and robust. The methods developed will be discussed and several test problems included in this paper.
机译:现代水库模拟器中的并联求解器的主要问题是稳健性,可扩展性,效率和灵活性。对于运行复杂的巨型中东储层的运行快速现场仿真存在重大兴趣,这将需要数十万辆网格细胞来提供合理的分辨率。同时,显着的地质复杂性将需要治疗双渗透区域,断层和裂缝,以及高储层和流体性能的高变化。当然,该方法还应适用于所提取的扇区模拟,在结构化和非结构化的离散化中具有本地网格改进。本工作中考虑的预处理方法包括单阶段和多级框架。在单阶段框架中,考虑了一种新的方法,除了不完整的LU acciplations [ILU0,ILU(K)和ILUT]的众所周知的众所周知的变体。新方法是一种高度平行的方法,本文将被称为非结构化线求解电源系列(LSP)方法。根据平行线性溶剂的关键问题,将讨论和对比。非结构化LSP在并联构造中具有一定的有趣性质,这使其成为高效的组件。本作工作中研究的多级方法是约束压力残差(CPR)框架。该方法使用近似压力解决作为预处理到完整系统预处理的第一阶段。研究了基于这一概念的许多原始改编。这里,探讨了使用平行代数多缘(AMG)方法和上面提到的多级CPR框架内的组合中提到的其他单级方法。以这种方式构建的某些方法是高效,可扩展性和鲁棒的。将讨论开发的方法以及本文中包含的几个测试问题。

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