论文标题

使用预处理相位字段的高阶通量重建接口跟踪方法

A High Order Flux Reconstruction Interface Tracking Method Using Preconditioned Phase Field

论文作者

Salami, Jabir Al, Kamra, Mohamed M., Hu, Changhong

论文摘要

本文提出了一种简单而高度准确的方法,用于捕获使用非结构性网格上的高阶重建方法在无差速器速度场中移动的尖锐界面。高阶方法的一个众所周知的局限性是它们对吉布斯现象的敏感性。不连续性和陡峭梯度附近的虚假振荡的出现使得难以准确解决冲击或尖锐的接口。为了在尖锐的接口捕获中解决此问题,在这项工作中开发了一种新颖的,预处理和局部相位场方法。通过基于局部人工粘度稳定的级别设置方法,通过使用预处理程序来提高界面正常向量的数值精度。开发的方法是在多平台通量重建开源代码PYFR的框架中实现的。在不同的网格类型上进行的2D和3D的数值测试表明,预处理程序可显着提高准确性。结果表明,与常规和高阶VOF和水平设置方法相比,该方法的保守性及其能够以优异的精度捕获高度扭曲的界面的能力。提出的方法的高精度和位置为进行多相不可压缩现象的大规模平行,高精度模拟提供了有希望的途径。

This paper presents a simple and highly accurate method for capturing sharp interfaces moving in divergence-free velocity fields using the high-order Flux Reconstruction approach on unstructured grids. A well-known limitation of high-order methods is their susceptibility to the Gibbs phenomenon; the appearance of spurious oscillations in the vicinity of discontinuities and steep gradients makes it difficult to accurately resolve shocks or sharp interfaces. In order to address this issue in the context of sharp interface capturing, a novel, preconditioned and localized phase field method is developed in this work. The numerical accuracy of interface normal vectors is improved by utilizing a preconditioning procedure based on the level set method with localized artificial viscosity stabilization. The developed method was implemented in the framework of the multi-platform Flux Reconstruction open-source code PyFR. Numerical tests in 2D and 3D conducted on different mesh types showed that the preconditioning procedure significantly improves accuracy. The results demonstrate the conservativeness of the proposed method and its ability to capture highly distorted interfaces with superior accuracy when compared to conventional and high-order VOF and level set methods. The high accuracy and locality of the proposed method offer a promising route to carrying out massively-parallel, high accuracy simulations of multi-phase, incompressible phenomena.

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