Drag reduction in wall-bounded turbulence by synthetic jet sheets

被引:11
|
作者
Xie, Feng [1 ]
Perez-Munoz, Jose D. [1 ]
Qin, Ning [1 ]
Ricco, Pierre [1 ]
机构
[1] Univ Sheffield, Dept Mech Engn, Mappin St, Sheffield S1 3JD, S Yorkshire, England
基金
欧盟地平线“2020”;
关键词
drag reduction; turbulence control; EDDY SIMULATION; FLOWS; LAYER;
D O I
10.1017/jfm.2022.347
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
A turbulent drag-reduction method employing synthetic jet sheets in a turbulent channel flow is investigated by direct numerical simulations. The jet sheets are wall-parallel and produced by periodic blowing and suction from pairs of thin slots aligned with the main streamwise flow. By varying the slot height and the jet-sheet angle with respect to the spanwise direction, drag-reduction margins between 10 % and 30 % are obtained for jet-sheet angles between 45 degrees and 75 degrees, while a drag increase of almost 100% is computed when the jet sheets are spanwise-oriented. When global skin-friction drag reduction occurs, the wall-shear stress near the jet-sheet exits increases during suction and decreases during blowing, while the velocity fluctuations weaken during suction and intensify during blowing. The global drag-reduction effect is produced by a finite counter flow induced by the nonlinear interaction between the jet-sheet flow and the main flow, although the turbulent intensity and Reynolds shear stresses increase. The power spent to generate the jet sheets is computed by modelling numerically the actuator underneath the channel flow as a piston oscillating sinusoidally along the spanwise direction in a round-shaped cavity from which the fluid is released into the channel through the cavity exits. A power balance leads to the computation of the efficiency of the actuator system, quantifying the portion of the piston power that is lost as internal power fluxes and heat transfer through the cavity walls. For the tested configurations, the power consumed by the piston to generate the jet sheets is larger than the power saved thanks to the drag reduction.
引用
收藏
页数:37
相关论文
共 50 条
  • [1] Colloquium: Theory of drag reduction by polymers in wall-bounded turbulence
    Procaccia, Itamar
    L'vov, Victor S.
    Benzi, Roberto
    REVIEWS OF MODERN PHYSICS, 2008, 80 (01) : 225 - 247
  • [2] ACTIVE TURBULENCE CONTROL FOR DRAG REDUCTION IN WALL-BOUNDED FLOWS
    CHOI, H
    MOIN, P
    KIM, J
    JOURNAL OF FLUID MECHANICS, 1994, 262 : 75 - 110
  • [3] Active turbulence control for drag reduction in wall-bounded flows
    Choi, Haecheon
    Moin, Parviz
    Kim, John
    Journal of Fluid Mechanics, 1994, 262 : 75 - 110
  • [4] Active control of wall-bounded turbulence for drag reduction with piezoelectric oscillators
    白建侠
    姜楠
    郑小波
    唐湛琪
    王康俊
    崔晓通
    ChinesePhysicsB, 2018, 27 (07) : 402 - 408
  • [5] Drag reduction in wall-bounded turbulence via a transverse travelling wave
    Du, YQ
    Symeonidis, V
    Karniadakis, GE
    JOURNAL OF FLUID MECHANICS, 2002, 457 : 1 - 34
  • [6] Active control of wall-bounded turbulence for drag reduction with piezoelectric oscillators
    Bai, Jian-Xia
    Jiang, Nan
    Zheng, Xiao-Bo
    Tang, Zhan-Qi
    Wang, Kang-Jun
    Cui, Xiao-Tong
    CHINESE PHYSICS B, 2018, 27 (07)
  • [7] The influence of external turbulence on a wall-bounded jet
    Poelma, C.
    Beati, F.
    Westerweel, J.
    Hunt, J. C. R.
    ADVANCES IN TURBULENCE XI, 2007, 117 : 289 - +
  • [8] Low-drag events in transitional wall-bounded turbulence
    Whalley, Richard D.
    Park, Jae Sung
    Kushwaha, Anubhav
    Dennis, David J. C.
    Graham, Michael D.
    Poole, Robert J.
    PHYSICAL REVIEW FLUIDS, 2017, 2 (03):
  • [9] Wall-bounded TURBULENCE
    Smits, Alexander J.
    Marusic, Ivan
    PHYSICS TODAY, 2013, 66 (09) : 25 - 30
  • [10] Drag reduction by polymers in wall bounded turbulence
    L'vov, VS
    Pomyalov, A
    Procaccia, I
    Tiberkevich, V
    PHYSICAL REVIEW LETTERS, 2004, 92 (24) : 244503 - 1