Numerical and experimental investigations on drag-reducing effects of riblets

被引:7
|
作者
Li, Chaoqun [1 ]
Tang, Shuo [1 ]
Li, Yi [1 ]
Geng, Zihai [2 ,3 ]
机构
[1] Northwestern Polytech Univ, Sch Astronaut, Xian, Peoples R China
[2] Northwestern Polytech Univ, Sch Aeronaut, Xian, Peoples R China
[3] China Aerodynam Res & Dev Ctr, Mianyang, Sichuan, Peoples R China
关键词
Flow control; riblets; direct numerical simulation; high-order schemes; wind tunnel experiments; TURBULENT-BOUNDARY-LAYER; REDUCTION-MECHANISM; HIGH-ORDER; FLOW; SURFACE; SIMULATION; OPTIMIZATION; SCHEMES; AIRFOIL;
D O I
10.1080/19942060.2021.1989043
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The numerical simulation and force measurement experiment are conducted in this work. The direct numerical simulation method with high-order schemes is performed to resolve the incompressible turbulent flow over riblets. According to the turbulent statistics, behaviors of the large-scale streamwise vortices above riblets are analyzed. In drag-reducing cases, the population density of streamwise vortices near the wall decreases, and the ratio of contributions of the large-scale streamwise vortices to the total mean shear is also lowered. In addition, streamwise vortices are situated near riblet tips, and spanwise motions of the vortices are weakened. Consequently, they are anchored at the riblet surface. In the experimental investigation, the drag characteristics of a transport aircraft mounted with riblets are studied in a low-speed wind tunnel. The angle of attack (AoA) ranges between -2 degrees and 20 degrees, and the test speed is up to 70 m/s. A maximum of nearly 40% decline in drag coefficient is achieved at 10 degrees AoA. Because the riblet surface makes the fluid more irrotational and the vortices are anchored at the wall, the flow separation is weakened at moderate AoAs, which indicates that the pressure drag is also reduced in the circumstance.
引用
收藏
页码:1726 / 1745
页数:20
相关论文
共 50 条
  • [31] EFFECTS OF A DRAG-REDUCING POLYMER ON THE TURBULENT BOUNDARY LAYER.
    Kumor, Stanley M.
    Sylvester, Nicholas D.
    [J]. AIChE Symposium Series, 1973, 69 (130): : 1 - 13
  • [32] On pipe diameter effects in surfactant drag-reducing pipe flows
    Usui, H
    Itoh, T
    Saeki, T
    [J]. RHEOLOGICA ACTA, 1998, 37 (02) : 122 - 128
  • [33] Optimal Microstructures Drag Reducing Mechanism of Riblets
    Friedmann, Elfriede
    Richter, Thomas
    [J]. JOURNAL OF MATHEMATICAL FLUID MECHANICS, 2011, 13 (03) : 429 - 447
  • [34] On pipe diameter effects in surfactant drag-reducing pipe flows
    H. Usui
    Takayasu Itoh
    Takashi Saeki
    [J]. Rheologica Acta, 1998, 37 : 122 - 128
  • [35] Experimental Investigations on Manufacturing Different-Shaped Bio-Inspired Drag-Reducing Morphologies and Hydrodynamic Testing
    Y. Luo
    J. Wang
    G. Sun
    X. Li
    Y. Liu
    [J]. Experimental Techniques, 2016, 40 : 1129 - 1136
  • [36] Experimental Investigations on Manufacturing Different-Shaped Bio-Inspired Drag-Reducing Morphologies and Hydrodynamic Testing
    Luo, Y.
    Wang, J.
    Sun, G.
    Li, X.
    Liu, Y.
    [J]. EXPERIMENTAL TECHNIQUES, 2016, 40 (03) : 1129 - 1136
  • [37] Optimal Microstructures Drag Reducing Mechanism of Riblets
    Elfriede Friedmann
    Thomas Richter
    [J]. Journal of Mathematical Fluid Mechanics, 2011, 13 : 429 - 447
  • [38] Experimental and numerical investigations of cooling drag
    Hobeika, Teddy
    Sebben, Simone
    Lofdahl, Lennart
    [J]. PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART D-JOURNAL OF AUTOMOBILE ENGINEERING, 2017, 231 (09) : 1203 - 1210
  • [39] Experimental study of passive heat transfer enhancement in a drag-reducing flow
    Yeo, K. H.
    Zhou, T.
    Leong, K. C.
    [J]. HEAT TRANSFER ENGINEERING, 2007, 28 (01) : 9 - 18
  • [40] EFFECTS OF PH ON PRODUCTION OF BACTERIAL EXTRACELLULAR DRAG-REDUCING POLYMERS
    KENIS, PR
    [J]. APPLIED MICROBIOLOGY, 1968, 16 (08) : 1253 - &