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Iteratively coupled reservoir simulation for multiphase flow in porous media.

机译:多孔介质中多相流的迭代耦合油藏模拟。

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摘要

Fully implicit and IMPES are two primary reservoir simulation schemes that are currently used widely. However, neither of them is sufficiently accurate or efficient, given the increasing size and degree of complexity of highly heterogeneous reservoirs. In this dissertation, an iterative coupling approach is proposed and developed to solve multiphase flow problems targeting the efficient, robust and accurate simulation of the hydrocarbon recovery process.;In the iterative coupling approach, the pressure equation is solved implicitly, followed by the saturation equation, which is solved semi-implicitly. These two stages are iteratively coupled at the end of each time step by evaluating material balance, both locally and globally, to check the convergence of each iteration. Additional iterations are conducted, if necessary; otherwise the simulation proceeds to the next time step. Several numerical techniques are incorporated to speed up the program convergence and cut down the number of iterations per time step, thus greatly improving iterative model performance. The iterative air-water model, the oil-water model, and the black oil model are all developed in this work.;Several numerical examples have been tested using the iterative approach, the fully implicit method, and the IMPES method. Results show that with the iterative method, about 20%--40% of simulation time is saved when compared to the fully implicit method with similar accuracy. As compared to the IMPES method, the iterative method shows better stability, allowing larger time steps in simulation. The iterative method also produces better mass balance than IMPES over the same time.;The iterative method is developed for parallel implementation, and several test cases have been run on parallel clusters with large numbers of processors. Good parallel scalability enables the iterative method to solve large problems with millions of elements and highly heterogeneous reservoir properties.;Linear solvers take the greatest portion of CPU time in reservoir simulations. This dissertation investigates advanced linear solvers for high performance computers (HPC) for reservoir simulation. Their performance is compared and discussed.
机译:完全隐式和IMPES是目前广泛使用的两种主要的油藏模拟方案。但是,鉴于高度非均质油藏的规模和复杂程度的增加,它们都不是足够准确或有效的。本文针对油气回收过程的高效,鲁棒和准确模拟,提出了迭代耦合方法,以解决多相流问题。在迭代耦合方法中,隐式求解压力方程,然后求解饱和方程。 ,这是半隐式解决的。通过在本地和全局范围内评估物料平衡,可以在每个时间步骤的末尾将这两个阶段迭代耦合,以检查每次迭代的收敛性。如有必要,还会进行其他迭代。否则,仿真将继续进行下一个步骤。结合了多种数值技术,可加快程序收敛速度并减少每个时间步的迭代次数,从而大大提高了迭代模型的性能。这项工作开发了迭代的空气-水模型,油水模型和黑油模型。;已经使用迭代方法,完全隐式方法和IMPES方法测试了几个数值示例。结果表明,与精度相似的完全隐式方法相比,使用迭代方法可节省大约20%-40%的仿真时间。与IMPES方法相比,该迭代方法显示出更好的稳定性,从而允许更长的仿真时间。同时,该迭代方法还比IMPES产生了更好的质量平衡。迭代方法是为并行实现而开发的,并且已经在具有大量处理器的并行集群上运行了多个测试用例。良好的并行可扩展性使迭代方法能够解决具有数百万个元素和高度异构的油藏属性的大问题。线性求解器在油藏模拟中占用了CPU时间的最大部分。本文研究了用于油藏模拟的高性能计算机(HPC)的高级线性求解器。比较并讨论了它们的性能。

著录项

  • 作者

    Lu, Bo.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Engineering Petroleum.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 166 p.
  • 总页数 166
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 石油、天然气工业;
  • 关键词

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