Drag reduction by herringbone riblet texture in direct numerical simulations of turbulent channel flow

被引:50
|
作者
Benschop, H. O. G. [1 ]
Breugem, W. -P. [1 ]
机构
[1] Delft Univ Technol, Lab Aero & Hydrodynam, Delft, Netherlands
来源
JOURNAL OF TURBULENCE | 2017年 / 18卷 / 08期
关键词
Drag reduction; riblets; direct numerical simulations; WALL TURBULENCE; SECONDARY FLOWS; BOUNDARY-LAYERS; SKIN-FRICTION; FLAT-PLATE; TRANSVERSE; CONVERGENT; SURFACES; BEHAVIOR;
D O I
10.1080/14685248.2017.1319951
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
A bird-feather-inspired herringbone riblet texture was investigated for turbulent drag reduction. The texture consists of blade riblets in a converging/diverging or herringbone pattern with spanwise wavelength (f). The aim is to quantify the drag change for this texture as compared to a smooth wall and to study the underlying mechanisms. To that purpose, direct numerical simulations of turbulent flow in a channel with height L-z were performed. The Fukagata-Iwamoto-Kasagi identity for drag decomposition was extended to textured walls and was used to study the drag change mechanisms. For (f)/L-z O(10), the herringbone texture behaves similarly to a conventional parallel-riblet texture in yaw: the suppression of turbulent advective transport results in a slight drag reduction of 2%. For (f)/L-z less than or similar to O(1), the drag increases strongly with a maximum of 73%. This is attributed to enhanced mean and turbulent advection, which results from the strong secondary flow that forms over regions of riblet convergence/divergence. Hence, the employment of convergent/divergent riblets in the texture seems to be detrimental to turbulent drag reduction.
引用
收藏
页码:717 / 759
页数:43
相关论文
共 50 条
  • [1] Direct numerical simulation of pulsating turbulent channel flow for drag reduction
    Iwamoto, Kaoru
    Sasou, Naoaki
    Kawamura, Hiroshi
    ADVANCES IN TURBULENCE XI, 2007, 117 : 709 - 711
  • [2] Direct numerical simulations of viscoelastic turbulent channel flows at high drag reduction
    Housiadas, KD
    Beris, AN
    KOREA-AUSTRALIA RHEOLOGY JOURNAL, 2005, 17 (03) : 131 - 140
  • [3] Numerical Study of Turbulent Drag Reduction over Riblet Surface
    Zhang, H. Y.
    Yang, H. X.
    Li, G.
    PROCEEDINGS OF THE EIGHTEENTH (2008) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL 3, 2008, : 441 - 445
  • [4] Comparison of theory and direct numerical simulations of drag reduction by rodlike polymers in turbulent channel flows
    Benzi, Roberto
    Ching, Emily S. C.
    De Angelis, Elisabetta
    Procaccia, Itamar
    PHYSICAL REVIEW E, 2008, 77 (04):
  • [5] Direct Numerical Simulation of a Turbulent Channel Flow with Forchheimer Drag
    Soumak Bhattacharjee
    Evgeny Mortikov
    Andrey Debolskiy
    Evgeny Kadantsev
    Rahul Pandit
    Timo Vesala
    Ganapati Sahoo
    Boundary-Layer Meteorology, 2022, 185 : 259 - 276
  • [6] Direct Numerical Simulation of a Turbulent Channel Flow with Forchheimer Drag
    Bhattacharjee, Soumak
    Mortikov, Evgeny
    Debolskiy, Andrey
    Kadantsev, Evgeny
    Pandit, Rahul
    Vesala, Timo
    Sahoo, Ganapati
    BOUNDARY-LAYER METEOROLOGY, 2022, 185 (02) : 259 - 276
  • [7] Direct numerical simulations of rotating turbulent channel flow
    Grundestam, Olof
    Wallin, Stefan
    Johansson, Arne V.
    JOURNAL OF FLUID MECHANICS, 2008, 598 : 177 - 199
  • [8] Direct and Large Eddy Numerical Simulations of Turbulent Viscoelastic Drag Reduction
    Thais, Laurent
    Tejada-Martinez, Andres E.
    Gatski, Thomas B.
    Mompean, Gilmar
    Naji, Hassan
    PROGRESS IN WALL TURBULENCE: UNDERSTANDING AND MODELING, 2011, 14 : 421 - +
  • [9] Parametric Study on a Sinusoidal Riblet for Drag Reduction by Direct Numerical Simulation
    M. Sasamori
    O. Iihama
    H. Mamori
    K. Iwamoto
    A. Murata
    Flow, Turbulence and Combustion, 2017, 99 : 47 - 69
  • [10] Parametric Study on a Sinusoidal Riblet for Drag Reduction by Direct Numerical Simulation
    Sasamori, M.
    Iihama, O.
    Mamori, H.
    Iwamoto, K.
    Murata, A.
    FLOW TURBULENCE AND COMBUSTION, 2017, 99 (01) : 47 - 69