Maximum-principle-satisfying second-order Intrusive Polynomial Moment scheme

J. Kusch, G. Alldredge, M. Frank
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引用次数: 23

Abstract

Using standard intrusive techniques when solving hyperbolic conservation laws with uncertainties can lead to oscillatory solutions as well as nonhyperbolic moment systems. The Intrusive Polynomial Moment (IPM) method ensures hyperbolicity of the moment system while restricting oscillatory over- and undershoots of specified bounds. In this contribution, we derive a second-order discretization of the IPM moment system which fulfills the maximum principle. This task is carried out by investigating violations of the specified bounds due to the errors from the numerical optimization required by the scheme. This analysis gives weaker conditions on the entropy that is used, allowing the choice of an entropy which enables choosing the exact minimal and maximal value of the initial condition as bounds. Solutions calculated with the derived scheme are nonoscillatory while fulfilling the maximum principle. The second-order accuracy of our scheme leads to significantly reduced numerical costs.
满足最大原理的二阶干涉多项式矩格式
在求解具有不确定性的双曲守恒律时,使用标准的侵入技术可以得到振荡解以及非双曲力矩系统。干涉多项式矩(IPM)方法保证了矩系统的双曲性,同时限制了给定边界上的振荡过冲和欠冲。在这篇贡献中,我们导出了IPM力矩系统的二阶离散化,它满足极大值原理。这项任务是通过调查由于方案所要求的数值优化误差而导致的对指定边界的违反来完成的。该分析给出了所使用的熵的较弱条件,允许选择熵,从而可以选择初始条件的精确最小值和最大值作为边界。用导出的格式计算的解在满足极大值原理的情况下是无振荡的。该方案的二阶精度显著降低了数值成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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