On the scaling and critical layer in a turbulent boundary layer over a compliant surface

被引:1
作者
Lu, Yuhui [1 ]
Xiang, Tianrui [1 ]
Zaki, Tamer A. [1 ]
Katz, Joseph [1 ]
机构
[1] Johns Hopkins Univ, Dept Mech Engn, Baltimore, MD 21218 USA
关键词
boundary layers; PHYSICAL INTERPRETATION; PRESSURE-FLUCTUATIONS; CHANNEL FLOW; WALL; GENERATION; DEFORMATION; WAVES;
D O I
10.1017/jfm.2024.11
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Simultaneous time-resolved measurements of wall deformation and the 3-D velocity field in boundary layers over a compliant surface are performed by integrating Mach Zehnder interferometry with tomographic particle tracking velocimetry. The pressure is calculated by spatially integrating the material acceleration. Combining data obtained from several references, trends of the deformation r.m.s. scaled by the compliant wall thickness collapse when plotted vs pressure fluctuations scaled by the material shear modulus. For the present data, at all Reynolds numbers, the deformation waves travel at 53% of the free-stream velocity and have a preferred wavelength of three times the thickness. The latter is consistent with theoretical models. Adopting insight derived from atmospheric wind-wave interactions, the pressure-deformation correlations peak at or slightly above the 'critical layer', where the mean flow speed is equal to the surface wave speed. This layer is located within the log layer, and when expressed using inner variables, increases in elevation with increasing Reynolds number. For the entire region below the critical layer, wavenumber-frequency spectra of pressure and vertical velocity fluctuations indicate that the turbulence is phase locked and travels with the deformation, even for deformation amplitudes much smaller than a wall unit. In contrast, above the critical layer, the turbulence is advected at the local mean streamwise velocity, and its correlation with the deformation decays rapidly. These findings indicate that the height of the zone dominated by flow-deformation interactions is determined by the surface wave speed, and its variations are caused by deformation-induced modifications to the mean velocity profile.
引用
收藏
页数:13
相关论文
共 50 条
  • [1] On the interaction of a compliant wall with a turbulent boundary layer
    Wang, Jin
    Koley, Subhra Shankha
    Katz, Joseph
    JOURNAL OF FLUID MECHANICS, 2020, 899
  • [2] Using two-layer compliant coatings to control turbulent boundary layer
    Kulik, B. M.
    Boiko, A. V.
    Lee, I.
    THERMOPHYSICS AND AEROMECHANICS, 2019, 26 (01) : 47 - 57
  • [3] Fine structure of the turbulent atmospheric boundary layer over the water surface
    Troitskaya, Yu. I.
    Sergeev, D. A.
    Ermakova, O. S.
    Balandina, G. N.
    IZVESTIYA ATMOSPHERIC AND OCEANIC PHYSICS, 2010, 46 (01) : 109 - 120
  • [4] DNS of a turbulent boundary layer with surface roughness
    Cardillo, James
    Chen, Yi
    Araya, Guillermo
    Newman, Jensen
    Jansen, Kenneth
    Castillo, Luciano
    JOURNAL OF FLUID MECHANICS, 2013, 729 : 603 - 637
  • [5] Acoustic Radiation of a Turbulent Boundary Layer Over a Flat Smooth Boundary
    Belyaev, I. V.
    Kopiev, V. F.
    Mironov, M. A.
    ACOUSTICAL PHYSICS, 2024, 70 (06) : 989 - 1000
  • [6] On the Outer Layer Controversy for a Turbulent Boundary Layer over a Rough Wall
    Antonia, Robert A.
    Djenidi, Lyazid
    IUTAM SYMPOSIUM ON THE PHYSICS OF WALL-BOUNDED TURBULENT FLOWS ON ROUGH WALLS, 2010, 22 : 77 - 86
  • [7] Instabilities in the boundary layer over a permeable, compliant wall
    Pluvinage, Franck
    Kourta, Azeddine
    Bottaro, Alessandro
    PHYSICS OF FLUIDS, 2014, 26 (08)
  • [8] Acoustic implications of a thin viscous boundary layer over a compliant surface or permeable liner
    Brambley, E. J.
    JOURNAL OF FLUID MECHANICS, 2011, 678 : 348 - 378
  • [9] Turbulent boundary layer flow over a three-dimensional sinusoidal surface
    Chan, C. I.
    Chin, R. C.
    JOURNAL OF FLUID MECHANICS, 2023, 975
  • [10] Evolutions of hairpin vortexes over a superhydrophobic surface in turbulent boundary layer flow
    Zhang, Jingxian
    Tian, Haiping
    Yao, Zhaohui
    Hao, Pengfei
    Jiang, Nan
    PHYSICS OF FLUIDS, 2016, 28 (09)