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Accurate local upscaling with variable compact multipoint transmissibility calculations

机译:通过可变的紧凑型多点传输率计算实现精确的局部放大

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We propose a new single-phase local upscaling method that uses spatially varying multipoint transmissibility calculations. The method is demonstrated on two-dimensional Cartesian and adaptive Cartesian grids. For each cell face in the coarse upscaled grid, we create a local fine grid region surrounding the face on which we solve two generic local flow problems. The multipoint stencils used to calculate the fluxes across coarse grid cell faces involve the six neighboring pressure values. They are required to honor the two generic flow problems. The remaining degrees of freedom are used to maximize compactness and to ensure that the flux approximation is as close as possible to being two-point. The resulting multipoint flux approximations are spatially varying (a subset of the six neighbors is adap-tively chosen) and reduce to two-point expressions in cases without full-tensor anisotropy. Numerical tests show that the method significantly improves upscaling accuracy as compared to commonly used local methods and also compares favorably with a local-global upscaling method.
机译:我们提出了一种新的单相局部放大方法,该方法使用了空间变化的多点透射率计算。该方法在二维笛卡尔网格和自适应笛卡尔网格上得到了证明。对于粗糙放大网格中的每个单元面,我们围绕该面创建一个局部细网格区域,在该区域上我们可以解决两个通用的局部流动问题。用于计算穿过粗网格单元表面的通量的多点模板涉及六个相邻的压力值。需要它们满足两个通用流程问题。剩余的自由度用于最大化紧凑性,并确保通量近似值尽可能接近两点。所得的多点通量近似值在空间上变化(自适应地选择六个邻居的子集),并且在没有全张量各向异性的情况下减少为两点表达式。数值测试表明,与常用的局部方法相比,该方法显着提高了升尺度精度,并且与局部全局升尺度方法相比具有优势。

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