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Nonlinear Diffusion Acceleration of the Least-Squares Transport Equation in Geometries with Voids

机译:空隙几何形状中最小二乘传输方程的非线性扩散加速度

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In this paper we show the extension of nonlinear diffusion acceleration (NDA) to geometries containing small voids using a weighted-least-squares (WLS) high-order equation. Even though the WLS equation is well defined in voids, the low-order drift-diffusion equation was not defined in materials with a zero cross section. This paper derives the necessary modifications to the NDA algorithm. We show that a small change to the NDA closure term and a nonlocal definition of the diffusion coefficient solve the problems for void regions. These changes do not affect the algorithm for optically thick material regions while making the algorithm well defined in optically thin ones. We use a Fourier analysis to perform an iterative analysis to confirm that the modifications result in a stable and efficient algorithm. Later in the paper, numerical results of our method are presented. We test this formulation with a small, one-dimensional test problem. Additionally, we present results for a modified version of the C5G7 benchmark containing voids as a more complex, reactor-like problem. We compared our results to Texas A&M's transport code PDT, utilizing a first-order discontinuous formulation as reference and the self-adjoint angular flux equation with void treatment (SAAF tau), a different second-order form. The results indicate that the NDA WLS performed comparably or slightly worse then the asymmetric SAAF tau while maintaining a symmetric discretization matrix.
机译:在本文中,我们示出了使用加权 - 最小二乘(WLS)高阶方程的包含小空隙的几何形状的非线性扩散加速度(NDA)的延伸。即使WLS方程在空隙中很好地定义,即使在空隙中很好地定义,则低阶漂移 - 扩散方程没有用零横截面的材料定义。本文导出对NDA算法的必要修改。我们表明,对NDA闭合项的小变化和扩散系数的非局部定义解决了空隙区域的问题。这些变化不会影响光学厚物质区域的算法,同时使算法在光学薄的算法很好地定义。我们使用傅里叶分析来执行迭代分析,以确认修改结果稳定,高效的算法。篇文中文以后,提出了我们方法的数值结果。我们用小型一维测试问题测试此配方。此外,我们为包含空隙的C5G7基准测试的修改版本提供了更复杂,反应堆的问题的结果。将结果与德克萨斯A&M的运输代码PDT进行了比较,利用一阶不连续的制剂作为参考和具有空隙处理(SAAF TAU)的自伴有角通量方程,不同的二阶形式。结果表明,NDA WLS在保持对称离散化矩阵的同时相对或略差于不对称SAAF Tai。

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