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Multi-physics modeling of flow and transport in porous media using a downscaling approach

机译:使用降尺度方法在多孔介质中流动和传输的多物理场建模

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摘要

Multi-phase flow and transport processes generally occur on different spatial and temporal scales. Very often also, within a physical system, they vary in space meaning that different kinds of processes might take place in different parts of the system. In order to account for the variety of processes and to take their scale-dependence into account, the development of multi-scale multi-physics techniques can be envisaged.rnWe extend a recently developed multi-scale multi-physics algorithm by Niessner and Helmig [Niessner J, Helmig R. Multi-scale modeling of three-phase-three-component processes in heterogeneous porous media. Adv Water Resour 2007;11(30):2309-25] where concentration equations were solved in a small part of the domain on a fine scale while pressure and saturation distribution were solved for in the whole physical system. While the saturation equation was upscaled to a coarser scale the pressure equation was still solved time-implicitly and on a fine scale. The new extension of this work is the upscaling of the pressure equation also. Where needed a downscaling approach provides fine-scale velocities.rnin this technical note, comparisons of the extended algorithm to the original one and to a fine-scale reference solution are shown. The major benefits of this extension are more flexibility with respect to the choice of scale and computational efficiency (the time-implicit solution of the fine-scale pressure equation is very costly) while maintaining a high accuracy.
机译:多相流动和运输过程通常发生在不同的空间和时间尺度上。同样,在物理系统中,它们的空间经常也会变化,这意味着系统的不同部分可能发生不同类型的过程。为了考虑过程的多样性并考虑到它们的尺度依赖性,可以设想多尺度多物理场技术的发展。我们扩展了Niessner和Helmig [ Niessner J,Helmig R.非均质多孔介质中三相三组分过程的多尺度建模。 Adv Water Resour 2007; 11(30):2309-25],其中浓度方程在小范围内以精细比例求解,而压力和饱和度分布在整个物理系统中求解。虽然饱和度方程式按比例放大到了较粗的比例,但压力方程式仍在时间上隐式且精细地求解。这项工作的新扩展也是压力方程式的放大。在需要的地方,可以采用缩小比例的方法来提供精细的速度。在本技术说明中,显示了扩展算法与原始算法和精细参考解决方案的比较。此扩展的主要好处是在选择比例和计算效率方面更具灵活性(精细比例压力方程的时间隐式解决方案非常昂贵),同时又保持了较高的精度。

著录项

  • 来源
    《Advances in Water Resources》 |2009年第6期|845-850|共6页
  • 作者

    J. Niessner; R. Helmig;

  • 作者单位

    Department of Hydromechanics and Modeling of Hydrosystems, Institute of Hydraulic Engineering, University of Stuttgart, Pfaffenwaldring 61, 70550 Stuttgart, Germany;

    Department of Hydromechanics and Modeling of Hydrosystems, Institute of Hydraulic Engineering, University of Stuttgart, Pfaffenwaldring 61, 70550 Stuttgart, Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    two-phase flow; porous media; multi-scale modeling; multi-physics modeling;

    机译:两相流多孔介质多尺度建模;多物理场建模;

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