Computational Flow Analysis in Aerospace, Energy and Transportation Technologies with the Variational Multiscale Methods

K. Takizawa, Y. Bazilevs, T. Tezduyar, A. Korobenko
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引用次数: 17

Abstract

With the recent advances in the variational multiscale (VMS) methods, computational ow analysis in aerospace, energy, and transportation technologies has reached a high level of sophistication. It is bringing solutions in challenging problems such as the aerodynamics of parachutes, thermo-fluid analysis of ground vehicles and tires, and fluid-structure interaction (FSI) analysis of wind turbines. The computational challenges include complex geometries, moving boundaries and interfaces, FSI, turbulent flows, rotational flows, and large problem sizes. The Residual-Based VMS (RBVMS), Arbitrary Lagrangian-Eulerian VMS (ALE-VMS) and Space-Time VMS (ST-VMS) methods have been successfully serving as core methods in addressing the computational challenges. The core methods are supplemented with special methods targeting specific classes of problems, such as the Slip Interface (SI) method, MultiDomain Method, and the ST-C data compression method. We provide and overview of the core and special methods. We present, as examples of challenging computations performed with these methods, aerodynamic analysis of a ramair parachute, thermo-fluid analysis of a freight truck and its rear set of tires, and aerodynamic and FSI analysis of two back-to-back wind turbines in atmospheric boundary layer flow. This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium provided the original work is properly cited.
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变分多尺度方法在航空航天、能源和交通运输技术中的计算流分析
随着变分多尺度(VMS)方法的最新进展,航空航天、能源和交通运输技术中的计算分析已经达到了很高的复杂程度。它为降落伞的空气动力学、地面车辆和轮胎的热流体分析以及风力涡轮机的流固耦合分析等具有挑战性的问题提供了解决方案。计算挑战包括复杂的几何形状、移动边界和界面、FSI、湍流、旋转流动和大型问题。基于残差的VMS (RBVMS)、任意拉格朗日-欧拉VMS (ALE-VMS)和时空VMS (ST-VMS)方法已经成功地成为解决计算挑战的核心方法。在核心方法的基础上,还补充了针对特定问题类别的特殊方法,如滑移界面(SI)方法、多域方法和ST-C数据压缩方法。我们提供和概述的核心和特殊的方法。作为使用这些方法进行的具有挑战性的计算的例子,我们提出了ramair降落伞的空气动力学分析,货运卡车及其后轮胎的热流体分析,以及大气边界层流动中两个背靠背风力涡轮机的空气动力学和FSI分析。这是一篇在知识共享署名许可(http://creativecommons.org/licenses/by/4.0/)条款下发布的开放获取文章,该许可允许在任何媒介上不受限制地使用、分发和复制,只要原始作品被适当引用。
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