Tomographic particle image velocimetry investigation on flow characteristics and pressure–velocity relation of a near-field tip vortex

IF 4.1 2区 工程技术 Q1 MECHANICS
Hang Zhao, Han Tu, Ke-Wei Xu, Wen-Xuan She, Qi Gao, Guo-Ping Zhang, Yan-Tao Cao, Xiao-Xing Peng, Xue-Ming Shao
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引用次数: 0

Abstract

The non-cavitating tip vortex in the near field of an elliptical hydrofoil is studied utilizing tomographic particle image velocimetry. Both the instantaneous and time-averaged flow fields are analyzed to elucidate the flow characteristics of the near-field tip vortex. The tip vortex is mainly formed on the suction side of hydrofoil and exhibits a tube-like shape. The turbulence intensity is at a relatively high level around the hydrofoil tip due to the roll-up process of the separated shear layers from the pressure side. With increasing angle of attack, the initiating position of the tip vortex moves upstream along the hydrofoil outline. In the near field, the axial flow within the tip vortex manifests a jet-like profile at higher angles of attack (α≥10°), and the majority of the vorticity is contained within the vortex core. A special position is identified during the streamwise evolution of the tip vortex, where the vortex circulation reaches its local maximum for the first time and the tip vortex cavitation is more prone to incept. In the vicinity of this crucial position, the pressure–velocity relation is derived along the vortex centerline by combining the three-dimensional measured velocity fields with the governing equations. It is revealed that the mean static pressure is directly related to the local mean axial velocity, adhering to the form of Bernoulli's equation. Conversely, corresponding pressure fluctuation depends on both the mean and fluctuating parts of the local axial velocity.
近场尖端涡流的流动特性和压力-速度关系的断层粒子图像测速研究
利用断层粒子图像测速仪研究了椭圆形水翼近场的非凹陷尖端涡。通过分析瞬时流场和时间平均流场,阐明了近场尖端涡的流动特征。顶端漩涡主要形成于水翼的吸入侧,呈管状。由于压力侧分离剪切层的卷积过程,水翼顶端周围的湍流强度相对较高。随着攻角的增大,顶端涡流的起始位置沿水翼轮廓向上游移动。在近场,顶端涡旋内的轴向流在较高攻角(α≥10°)时表现出类似喷流的剖面,大部分涡度都包含在涡旋核心内。在顶端涡流的流向演变过程中,我们发现了一个特殊的位置,在这个位置上,涡流环流首次达到局部最大值,顶端涡流空化更容易发生。在这一关键位置附近,通过将三维实测速度场与控制方程相结合,得出了沿涡旋中心线的压力-速度关系。结果表明,平均静压与局部平均轴向速度直接相关,符合伯努利方程的形式。相反,相应的压力波动取决于局部轴向速度的平均部分和波动部分。
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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来源期刊
Physics of Fluids
Physics of Fluids 物理-力学
CiteScore
6.50
自引率
41.30%
发文量
2063
审稿时长
2.6 months
期刊介绍: Physics of Fluids (PoF) is a preeminent journal devoted to publishing original theoretical, computational, and experimental contributions to the understanding of the dynamics of gases, liquids, and complex or multiphase fluids. Topics published in PoF are diverse and reflect the most important subjects in fluid dynamics, including, but not limited to: -Acoustics -Aerospace and aeronautical flow -Astrophysical flow -Biofluid mechanics -Cavitation and cavitating flows -Combustion flows -Complex fluids -Compressible flow -Computational fluid dynamics -Contact lines -Continuum mechanics -Convection -Cryogenic flow -Droplets -Electrical and magnetic effects in fluid flow -Foam, bubble, and film mechanics -Flow control -Flow instability and transition -Flow orientation and anisotropy -Flows with other transport phenomena -Flows with complex boundary conditions -Flow visualization -Fluid mechanics -Fluid physical properties -Fluid–structure interactions -Free surface flows -Geophysical flow -Interfacial flow -Knudsen flow -Laminar flow -Liquid crystals -Mathematics of fluids -Micro- and nanofluid mechanics -Mixing -Molecular theory -Nanofluidics -Particulate, multiphase, and granular flow -Processing flows -Relativistic fluid mechanics -Rotating flows -Shock wave phenomena -Soft matter -Stratified flows -Supercritical fluids -Superfluidity -Thermodynamics of flow systems -Transonic flow -Turbulent flow -Viscous and non-Newtonian flow -Viscoelasticity -Vortex dynamics -Waves
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