Department of Mechanical and Aerospace Engineering, University of California, Los Angeles, Los Angeles, California 90095, USA.
Chaos. 2010 Mar;20(1):017509. doi: 10.1063/1.3273036.
The Lagrangian coherent structures (LCSs) of simple wing cross sections in various low Reynolds number motions are extracted from high-fidelity numerical simulation data and examined in detail. The entrainment process in the wake of a translating ellipse is revealed by studying the relationship between attracting structures in the wake and upstream repelling structures, with the help of blocks of tracer particles. It is shown that a series of slender lobes in the repelling LCS project upstream from the front of the ellipse and "pull" fluid into the wake. Each lobe is paired with a corresponding wake vortex, into which the constituent fluid particles are folded. Flexible and rigid foils in flapping motion are studied, and the resulting differences in coherent structures are used to elucidate their differences in force generation. The clarity with which these flow structures are revealed, compared to the vorticity or velocity fields, provides new insight into the vortex shedding mechanisms that play an important role in unsteady aerodynamics.
从高保真数值模拟数据中提取了不同低雷诺数运动下简单翼剖面的拉格朗日相干结构(LCS),并对其进行了详细研究。通过研究尾迹中的吸引结构与上游排斥结构之间的关系,借助示踪粒子块揭示了平移椭圆的尾迹中的卷入过程。结果表明,排斥 LCS 中的一系列细长叶瓣从前缘向前投射,并“拉动”流进入尾迹。每个叶瓣都与一个对应的尾涡相对应,组成流体的粒子在其中折叠。研究了扑动运动中的柔性和刚性翼片,并用所得到的相干结构的差异来阐明它们在力生成方面的差异。与涡度或速度场相比,这些流结构的清晰程度提供了对在非定常空气动力学中起重要作用的涡脱落机制的新见解。