基于后验多维最优阶检测的多组分相变两相流的高阶有限体积求解器

IF 2.5 3区 工程技术 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Michael Deligant , Carlos-Jesús Romero-Casado , Xesús Nogueira , Luis Ramírez , Mathieu Specklin , Farid Bakir , Sofiane Khelladi
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引用次数: 0

摘要

在这项工作中,我们提出了一种非常高阶的可压缩有限体积格式,具有后先验稳定化,用于计算具有相变的多组分两相流。它基于有限体积方法,利用移动最小二乘(MLS)复制核进行黎曼态的高阶重建。采用多维最优阶检测(MOOD)方法获得高精度低耗散方案,同时保持有界性并防止界面和强梯度区域的数值振荡,从而增强了鲁棒性。从简单标量平流测试用例的收敛阶验证开始,通过经典测试问题证明了该框架的性质。然后模拟更复杂的冲击和更严格的各种水、蒸汽和空气浓度的管试验,并与文献中可用的参考文献进行比较。最后,通过液氧射流在气态氢中的模拟,说明了该方法计算相变多组分流动的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Very high order finite volume solver for multi component two-phase flow with phase change using a posteriori Multi-dimensional Optimal Order Detection
In this work we propose a very high-order compressible finite volume scheme with a posteriori stabilization for the computation of multi-component two-phase flow with phase change. It is based on finite volume approach using moving least squares (MLS) reproducing kernels for high order reconstruction of the Riemann states. Increased robustness is achieved by using the multi-dimensional optimal order detection (MOOD) method to get a high-accurate and low-dissipation scheme while maintaining boundedness and preventing numerical oscillations at interfaces and strong gradient zones. The properties of the proposed framework are demonstrated on classical test problems starting with convergence order verification on simple scalar advection test cases. More complex shock and more stringent tube tests with various water, steam and air concentration are then simulated and compared with available references in the literature. Finally, the ability of the proposed approach to compute multi-component flows with phase change is illustrated with the simulation of a liquid oxygen jet in gaseous hydrogen.
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来源期刊
Computers & Fluids
Computers & Fluids 物理-计算机:跨学科应用
CiteScore
5.30
自引率
7.10%
发文量
242
审稿时长
10.8 months
期刊介绍: Computers & Fluids is multidisciplinary. The term ''fluid'' is interpreted in the broadest sense. Hydro- and aerodynamics, high-speed and physical gas dynamics, turbulence and flow stability, multiphase flow, rheology, tribology and fluid-structure interaction are all of interest, provided that computer technique plays a significant role in the associated studies or design methodology.
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