The Impacts of Model Uncertainty on RANS CFD Simulations of a High-Speed Craft

Joseph Messler, Nicholas Husser, S. Brizzolara
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引用次数: 1

Abstract

Computational scientists frequently publish papers discussing various sources of uncertainty in numerical methods for computational fluid dynamics. The frequently discussed sources of uncertainty are round off error, discretization error, iterative error, and mathematical model uncertainty (i.e. uncertainty in turbulence modeling). While all of these sources of uncertainty are real and impact the results of a simulation, the authors have found through experience that the most critical element to achieving accurate simulation results for high-speed craft is the generation of a high quality mesh on which the numerical methods are solved. There are, in general, two requirements for a high quality mesh; refinement regions must be applied in regions where the physics of the flow are most significant, and the three dimensional model of the hull form must be appropriately defined and fair. The latter appears to be a major contributing factor to uncertainty in CFD simulations that is not often discussed in the literature. Further, in practice there are numerous sources of geometric uncertainty between a prescribed CAD geometry and physically constructed model. In this paper, simulations are performed on two models of GPPH, with and without an edge radius on the transom to evaluate the impact of including fine geometric details (like tooling radii) in a RANS CFD model. The results of the simulations show that the inclusion of the rounded edge leads to large simulation errors in resistance and running attitude. This work has concluded that inclusion of fine geometric details in a planing hull CFD model is not beneficial to the overall accuracy of the simulations relative to necessary design accuracy.
模型不确定性对某高速飞行器RANS CFD仿真的影响
计算科学家经常发表论文,讨论计算流体动力学数值方法中的各种不确定性来源。经常讨论的不确定性来源是舍入误差、离散误差、迭代误差和数学模型不确定性(即湍流建模中的不确定性)。虽然所有这些不确定性来源都是真实存在的,并且会影响模拟结果,但作者通过经验发现,实现高速飞行器精确模拟结果的最关键因素是生成高质量的网格,并在此网格上求解数值方法。一般来说,高质量的网格有两个要求;细化区域必须应用于流的物理最重要的区域,并且船体形状的三维模型必须适当地定义和公平。后者似乎是导致CFD模拟不确定性的主要因素,而这在文献中并不经常讨论。此外,在实践中,在规定的CAD几何和物理构造模型之间存在许多几何不确定性的来源。在本文中,对两种GPPH模型进行了仿真,在横梁上有边缘半径和没有边缘半径,以评估在RANS CFD模型中包含精细几何细节(如模具半径)的影响。仿真结果表明,圆边的加入会导致阻力和运行姿态的仿真误差较大。本文的研究结果表明,在平面船体CFD模型中加入精细的几何细节不利于模拟的整体精度。
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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