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首页> 外文期刊>Environmental earth sciences >Comparing global and local implementations of nonlinear complementary problems for the modeling of multi-component two-phase flow with phase change phenomena
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Comparing global and local implementations of nonlinear complementary problems for the modeling of multi-component two-phase flow with phase change phenomena

机译:比较非线性互补问题的全局和局部实现,以建模具有相变现象的多组分两相流

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摘要

Compositional multiphase flow is considered to be one of the fundamental physical processes in the field ofwater resources research. The strong nonlinearity and discontinuity emerging from phase transition phenomena pose a serious challenge for numerical modeling. Recently, Lauser et al. (Adv Water Resour 34(8): 957-966, 2011) have proposed a numerical scheme, namely the nonlinear complementary problem (NCP), to handle this strong nonlinearity. In this work, the NCP is implemented at both local and global levels of a finite element algorithm. In the former case, the NCP is integrated into the local thermodynamic equilibrium calculation, while in the latter one, it is formulated as one of the governing equations. The two different formulations have been investigated through three well-established benchmarks and analyzed for their efficiency and robustness. It is found that both globally and locally implementedNCP formulations are numerically more efficient and robust in comparison with traditional primary variable switching approach. In homogeneous media, the globally implemented NCP formulation leads to an approximately 20% faster simulation compared to the local NCP. This is because a nested Newton iteration for the local phase state identification can be avoided, and thus, the overall computational resources are saved accordingly. However, for problems involving strongly heterogeneous media, the locally integrated NCP formulation suppresses numerical oscillations and delivers more accurate and robust results, especially at the phase boundary.
机译:组成多相流被认为是水资源研究领域的基本物理过程之一。相变现象产生的强非线性和不连续性给数值建模提出了严峻的挑战。最近,Lauser等。 (Adv Water Resour 34(8):957-966,2011)提出了一种数值方案,即非线性互补问题(NCP),来解决这种强烈的非线性问题。在这项工作中,NCP是在有限元算法的局部和全局级别上实现的。在前一种情况下,NCP被集成到局部热力学平衡计算中,而在后一种情况下,它被公式化为控制方程式之一。已通过三个公认的基准研究了两种不同的配方,并对其效率和耐用性进行了分析。结果发现,与传统的主要变量切换方法相比,在全球和本地实施的NCP公式在数值上都更加有效和强大。在同质介质中,与本地NCP相比,全局实施的NCP配方可加快大约20%的仿真速度。这是因为可以避免用于局部相状态识别的嵌套牛顿迭代,从而相应地节省了总体计算资源。但是,对于涉及强异质性介质的问题,局部积分的NCP公式可抑制数值振荡,并提供更准确,更可靠的结果,尤其是在相界处。

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  • 来源
    《Environmental earth sciences》 |2017年第18期|643.1-643.18|共18页
  • 作者单位

    UFZ Helmholtz Ctr Environm Res, Dept Environm Informat, Permoserstr 15, D-04318 Leipzig, Germany|Tech Univ Dresden, Appl Environm Syst Anal, Dresden, Germany;

    UFZ Helmholtz Ctr Environm Res, Dept Environm Informat, Permoserstr 15, D-04318 Leipzig, Germany|Trinity Coll Dublin, Dept Mech & Mfg Engn, Dublin 2, Ireland;

    UFZ Helmholtz Ctr Environm Res, Dept Environm Informat, Permoserstr 15, D-04318 Leipzig, Germany|Freiberg Univ Min & Technol, Gustav Zeuner Str 1, D-09596 Freiberg, Germany;

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

    Phase transition; Multiphase flow; Nonlinear complementary problem; Numerical efficiency and accuracy; OpenGeoSys;

    机译:相变;多相流;非线性互补问题;数值效率和精度;OpenGeoSys;

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