Reynolds number dependence of large-scale friction control in turbulent channel flow

被引:25
|
作者
Canton, Jacopo [1 ,2 ]
Orlu, Ramis [1 ]
Chin, Cheng [3 ]
Schlatter, Philipp [1 ,2 ]
机构
[1] Royal Inst Technol, Linne FLOW Ctr KTH Mech, SE-10044 Stockholm, Sweden
[2] Swedish E Sci Res Ctr SeRC, Stockholm, Sweden
[3] Univ Adelaide, Dept Mech Engn, Adelaide, SA 5005, Australia
来源
PHYSICAL REVIEW FLUIDS | 2016年 / 1卷 / 08期
基金
瑞典研究理事会;
关键词
DRAG REDUCTION; WALL TURBULENCE; VELOCITY;
D O I
10.1103/PhysRevFluids.1.081501
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
The present work investigates the effectiveness of the control strategy introduced by Schoppa and Hussain [Phys. Fluids 10, 1049 (1998)] as a function of Reynolds number (Re). The skin-friction drag reduction method proposed by these authors, consisting of streamwise-invariant, counter-rotating vortices, was analyzed by Canton et al. [Flow, Turbul. Combust. 97, 811 (2016)] in turbulent channel flows for friction Reynolds numbers (Re t) corresponding to the value of the original study (i.e., 104) and 180. For these Re, a slightly modified version of the method proved to be successful and was capable of providing a drag reduction of up to 18%. The present study analyzes the Reynolds number dependence of this drag-reducing strategy by performing two sets of direct numerical simulations (DNS) for Re-tau = 360 and 550. A detailed analysis of the method as a function of the control parameters (amplitude and wavelength) and Re confirms, on the one hand, the effectiveness of the large-scale vortices at low Re and, on the other hand, the decreasing and finally vanishing effectiveness of this method for higher Re. In particular, no drag reduction can be achieved for Re t = 550 for any combination of the parameters controlling the vortices. For low Reynolds numbers, the large-scale vortices are able to affect the near-wall cycle and alter the wall-shear-stress distribution to cause an overall drag reduction effect, in accordance with most control strategies. For higher Re, instead, the present method fails to penetrate the near-wall region and cannot induce the spanwise velocity variation observed in other more established control strategies, which focus on the near-wall cycle. Despite the negative outcome, the present results demonstrate the shortcomings of the control strategy and show that future focus should be on methods that directly target the near-wall region or other suitable alternatives.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] On Large-Scale Friction Control in Turbulent Wall Flow in Low Reynolds Number Channels
    Jacopo Canton
    Ramis Örlü
    Cheng Chin
    Nicholas Hutchins
    Jason Monty
    Philipp Schlatter
    [J]. Flow, Turbulence and Combustion, 2016, 97 : 811 - 827
  • [2] On Large-Scale Friction Control in Turbulent Wall Flow in Low Reynolds Number Channels
    Canton, Jacopo
    Orlu, Ramis
    Chin, Cheng
    Hutchins, Nicholas
    Monty, Jason
    Schlatter, Philipp
    [J]. FLOW TURBULENCE AND COMBUSTION, 2016, 97 (03) : 811 - 827
  • [3] Scale and Reynolds number dependence of stochastic subgrid energy transfer in turbulent channel flow
    Kitsios, V.
    Sillero, J. A.
    Frederiksen, J. S.
    Soria, J.
    [J]. COMPUTERS & FLUIDS, 2017, 151 : 132 - 143
  • [4] Very-large-scale fluctuations in turbulent channel flow at low Reynolds number
    Matsubara, Masaharu
    Horii, Shun
    Sagawa, Yoshiyuki
    Takahashi, Yuta
    Saito, Daisuke
    [J]. INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2016, 62 : 593 - 597
  • [5] Large-scale structures in a numerical and experimental low-Reynolds number turbulent pipe flow
    SchwarzVanManen, AD
    Nieuwstadt, PTM
    [J]. EUROPEAN JOURNAL OF MECHANICS B-FLUIDS, 1996, 15 (06) : 897 - 915
  • [6] Direct numerical simulation of turbulent channel flow under a uniform magnetic field for large-scale structures at high Reynolds number
    Satake, Shin-ichi
    Kunugi, Tomoaki
    Takase, Kazuyuki
    Ose, Yasuo
    [J]. PHYSICS OF FLUIDS, 2006, 18 (12)
  • [7] Turbulent flow in a channel at a low Reynolds number
    A. Günther
    D. V. Papavassiliou
    M. D. Warholic
    T. J. Hanratty
    [J]. Experiments in Fluids, 1998, 25 : 503 - 511
  • [8] Turbulent flow in a channel at a low Reynolds number
    Gunther, A
    Papavassiliou, DV
    Warholic, MD
    Hanratty, TJ
    [J]. EXPERIMENTS IN FLUIDS, 1998, 25 (5-6) : 503 - 511
  • [9] Influence of global rotation and Reynolds number on the large-scale features of a turbulent Taylor-Couette flow
    Ravelet, F.
    Delfos, R.
    Westerweel, J.
    [J]. PHYSICS OF FLUIDS, 2010, 22 (05) : 1 - 8
  • [10] Large-scale probability density function for scalar field advected by high Reynolds number turbulent flow
    Fedotov, S
    [J]. JOURNAL OF PHYSICS A-MATHEMATICAL AND GENERAL, 1997, 30 (05): : L77 - L82