General Mean Velocity Distribution Law for Smooth-Wall Plane Couette Flow

被引:4
|
作者
Guo, Junke [1 ]
机构
[1] Univ Nebraska Lincoln, Dept Civil Engn, Omaha, NE 68182 USA
关键词
Eddy viscosity model; Friction factor; Law of the wall; Turbulent Couette flow; Velocity distribution; Wall-bounded flow; TURBULENCE;
D O I
10.1061/(ASCE)EM.1943-7889.0001370
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Plane Couette flow between two parallel smooth walls is one of the classic wall-bounded shear flows. Analytical description of this flow is still limited to the linear law for laminar flow, the classic law of the wall, and the velocity defect law for fully turbulent flow, although extensive direct numerical simulations (DNS) and laboratory experiments are available. This paper integrates the existing knowledge of mean velocity distribution from theory, experiments, and DNS into a single velocity distribution law by introducing a rational eddy viscosity model. Specifically, the eddy viscosity distribution is approximated by an even rational function which is cubic near the wall, linear in the log-law overlap, and symmetrical about the channel centerline. The rational eddy viscosity model leads to a general velocity distribution law in terms of four inverse hyperbolic tangent functions. This law reduces to the linear law for laminar flow, agrees with the classic van Driest law in the inner region, and is antisymmetrical about the channel centerline. Particularly, it well reproduces DNS and laboratory data for transitional and turbulent flows. Furthermore, this general velocity distribution law results in a general friction law. Finally, the rational eddy viscosity model has clear implications for other wall-bounded flows in future studies. (C) 2017 American Society of Civil Engineers.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] PIV mapping of pressure and velocity fields in the plane magnetohydrodynamic Couette flow
    Moudjed, B.
    Potherat, A.
    Holdsworth, M.
    EXPERIMENTS IN FLUIDS, 2020, 61 (12)
  • [32] PIV mapping of pressure and velocity fields in the plane magnetohydrodynamic Couette flow
    B. Moudjed
    A. Pothérat
    M. Holdsworth
    Experiments in Fluids, 2020, 61
  • [33] Velocity measurements of streamwise roll cells in rotating plane Couette flow
    Alexandre Suryadi
    Nils Tillmark
    P. Henrik Alfredsson
    Experiments in Fluids, 2013, 54
  • [34] Invariant scaling laws for plane Couette flow with wall-transpiration
    Dokoza, Toni
    de Lara, Joao Vinicius Hennings
    Oberlack, Martin
    PHYSICS OF FLUIDS, 2024, 36 (03)
  • [35] Plane Couette flow of viscoplastic materials along a slippery vibrating wall
    Piau, M
    Piau, JM
    JOURNAL OF NON-NEWTONIAN FLUID MECHANICS, 2005, 125 (01) : 71 - 85
  • [36] Modified snaking in plane Couette flow with wall-normal suction
    Azimi, Sajjad
    Schneider, Tobias M.
    JOURNAL OF FLUID MECHANICS, 2021, 912 (912)
  • [37] Properties of the nonequilibrium high-velocity "tails" of the molecular distribution function in plane Couette flow of a compressible gas
    Vermel' A.V.
    Makashev N.K.
    Fluid Dynamics, 1998, 33 (4) : 618 - 624
  • [38] The development of plane couette flow for a power-law fluid.
    Burgess, SL
    XIITH INTERNATIONAL CONGRESS ON RHEOLOGY, PROCEEDINGS, 1996, : 433 - 433
  • [39] Energy loss distribution in the plane Couette flow and the Taylor-Couette flow between concentric rotating cylinders
    Dou, Hua-Shu
    Khoo, Boo Cheong
    Yeo, Khoon Seng
    INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2007, 46 (03) : 262 - 275
  • [40] Effects of Oscillating Spanwise Mean Pressure Gradient on Rotating Plane Couette Flow
    Iida, O.
    Kanda, T.
    PROGRESS IN TURBULENCE X, ITI CONFERENCE ON TURBULENCE 2023, 2024, 404 : 95 - 100