Experiments on the low-frequency oscillation of a separated shear layer

被引:3
|
作者
Aniffa, S. Mohamed [1 ]
Mandal, Alakesh Ch. [1 ]
机构
[1] Indian Inst Technol, Dept Aerosp Engn, Kanpur 208016, India
关键词
FREE-STREAM TURBULENCE; COHERENT STRUCTURES; UNSTEADY BEHAVIOR; FLOW OSCILLATION; LAMINAR; AIRFOIL; BUBBLE; TRANSITION; INSTABILITY; SIMULATION;
D O I
10.1103/PhysRevFluids.8.023902
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
An experimental investigation has been carried out to study the effect of the lowfrequency oscillation of a separated shear layer. A separated shear layer was generated on a flat plate placed horizontally in a low-speed wind tunnel using a contoured wall at the top of the tunnel test section. Two different contoured walls were used to impose a low and high level of adverse pressure gradient in the flow. The time-resolved particle image velocimetry measurements were carried out to study the unsteady characteristics of the separated shear layer. The measured data reveals that the vortex shedding associated with the separating shear layer is regular for the low adverse pressure gradient case, whereas it is found to be irregular or intermittent for the high adverse pressure gradient. We find that the intermittent nature of the vortex shedding for the high adverse pressure gradient case is due to a low-frequency oscillation of the shear layer and the associated movement of the points of inflection in the velocity profiles. The short time-averaged velocity profiles in the intermittent vortex-shedding process are also found to follow the embedded shear layer scaling proposed by Schatzman and Thomas [J. Fluid Mech. 815, 592 (2017)]. We study the effect of this low-frequency oscillation on the stability characteristics of the separated shear layer and the vortex-shedding process. Based on the analyses, a nondimensional parameter (8*rms/8*) is proposed to quantify the interaction level of the low-frequency oscillation on the vortex shedding. We find that the interaction of the low-frequency oscillation on the vortex shedding vanishes as 8*rms/8 -> 0. Further, it shows that when the numerical value of this parameter approaches 0.23, the interaction is found to be intensified, leading to the separated shear layer either from a non-vortex-shedding state to vortex-shedding state or a vortex-shedding state to a non-vortex-shedding state.
引用
收藏
页数:26
相关论文
共 50 条
  • [31] Observation of low-frequency oscillation in argon helicon discharge
    朱婉莹
    崔瑞林
    韩若愚
    何锋
    欧阳吉庭
    Plasma Science and Technology, 2023, 25 (02) : 99 - 107
  • [32] Effect of low-frequency oscillation on performance of Hall thrusters
    Wei, Liqiu
    Li, Wenbo
    Ding, Yongjie
    Yu, Daren
    PLASMA SCIENCE & TECHNOLOGY, 2018, 20 (07)
  • [33] NONLINEAR LOW-FREQUENCY OSCILLATION SPECTRA OF AN ANISOTROPIC PLASMA
    MAKHANKO.VG
    SOVIET PHYSICS JETP-USSR, 1969, 29 (03): : 513 - &
  • [34] IMPROVING WELD QUALITY BY LOW-FREQUENCY ARC OSCILLATION
    KOU, S
    LE, Y
    WELDING JOURNAL, 1985, 64 (03) : 51 - 55
  • [35] Low-Frequency Shear Elasticity of a Colloid Nanosuspension
    D. N. Makarova
    T. S. Dembelova
    B. B. Badmaev
    Acoustical Physics, 2020, 66 : 613 - 615
  • [36] VELOCITY SHEAR AND LOW-FREQUENCY PLASMA INSTABILITIES
    PERKINS, FW
    JASSBY, DL
    PHYSICS OF FLUIDS, 1971, 14 (01) : 102 - &
  • [37] A Mathematical Approach of Low-Frequency Rip Current Oscillation
    Lee, J. L.
    Lee, J. Y.
    Kim, I. H.
    JOURNAL OF COASTAL RESEARCH, 2011, : 557 - 560
  • [38] A Mechanism of the Interdecadal Changes of the Global Low-Frequency Oscillation
    Yang, Ruowen
    Chen, Quanliang
    Liu, Yuyun
    Wang, Lin
    ATMOSPHERE, 2018, 9 (08):
  • [39] Research on the control strategy for turbine on low-frequency oscillation
    Wen, Xian-Kui
    Zhong, Jing-Liang
    Qian, Jin
    Zhongguo Dianji Gongcheng Xuebao/Proceedings of the Chinese Society of Electrical Engineering, 2009, 29 (26): : 107 - 111
  • [40] Low-Frequency Shear Elasticity of a Colloid Nanosuspension
    Makarova, D. N.
    Dembelova, T. S.
    Badmaev, B. B.
    ACOUSTICAL PHYSICS, 2020, 66 (06) : 613 - 615