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
  • [41] Drag reduction capacity of multi-scale and multi-level riblet in turbulent flow
    Chen, Dengke
    Li, Wenhao
    Zhao, Yichen
    Liu, Jinhai
    Cui, Xianxian
    Zhao, Zehui
    Liu, Xiaolin
    Chen, Huawei
    BIOSURFACE AND BIOTRIBOLOGY, 2024, 10 (01) : 7 - 15
  • [42] Direct numerical simulations of the drag degradation mechanism in channel flow over trapezoidal riblets
    Zhang, Yue
    Cai, Jinsheng
    Li, Wenfeng
    AEROSPACE SCIENCE AND TECHNOLOGY, 2024, 144
  • [43] Direct numerical simulation of drag reduction in a turbulent channel flow using spanwise traveling wave-like wall deformation
    Tomiyama, Nobuhito
    Fukagata, Koji
    PHYSICS OF FLUIDS, 2013, 25 (10)
  • [44] Investigation of the Turbulent Drag Reduction Mechanism of a Kind of Microstructure on Riblet Surface
    Ao, Mingrui
    Wang, Miaocao
    Zhu, Fulong
    MICROMACHINES, 2021, 12 (01)
  • [45] Direct numerical simulation of polymer-induced drag reduction in turbulent boundary layer flow
    Dimitropoulos, CD
    Dubief, Y
    Shaqfeh, ESG
    Moin, P
    Lele, SK
    PHYSICS OF FLUIDS, 2005, 17 (01) : 011705 - 011705
  • [46] Study on turbulence drag reduction of riblet plate in hypersonic turbulent flows
    Zhou, Hao
    Li, Xinliang
    Yu, Changping
    INTERNATIONAL JOURNAL OF MODERN PHYSICS C, 2020, 31 (03):
  • [47] Maximum drag reduction in a turbulent channel flow by polymer additives
    Min, T
    Choi, H
    Yoo, JY
    JOURNAL OF FLUID MECHANICS, 2003, 492 : 91 - 100
  • [48] Drag Reduction Due to Streamwise Grooves in Turbulent Channel Flow
    DeGroot, C. T.
    Wang, C.
    Floryan, J. M.
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2016, 138 (12):
  • [49] Assessment of suboptimal control for drag reduction in turbulent channel flow
    Choi, JI
    Sung, HJ
    JOURNAL OF TURBULENCE, 2002, 3
  • [50] Direct numerical simulations of turbulent channel flow with transverse square bars on one wall
    Leonardi, S
    Orlandi, P
    Smalley, RJ
    Djenidi, L
    Antonia, RA
    JOURNAL OF FLUID MECHANICS, 2003, 491 : 229 - 238