Local flow topology of a polymer-laden turbulent boundary layer

被引:0
|
作者
Warwaruk, Lucas [1 ]
Ghaemi, Sina [1 ]
机构
[1] Univ Alberta, Dept Mech Engn, Edmonton, AB T6G 2R3, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
drag reduction; turbulent boundary layers; VELOCITY-GRADIENT TENSOR; DRAG-REDUCING POLYMERS; FINE-SCALE MOTIONS; REYNOLDS-NUMBER; INVARIANTS; REDUCTION; EVOLUTION; DYNAMICS; RHEOLOGY; BREAKUP;
D O I
10.1017/jfm.2024.131
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Fine-scale flow motions are measured in a Newtonian and polymer drag-reduced turbulent boundary layer (TBL) at a common momentum thickness Reynolds number Re. of 2300. Relative to the Newtonian TBL, the polymer-laden flow has a 33% lower skin-friction coefficient. Three-dimensional (3-D) particle tracking velocimetry is used to measure the components of the velocity gradient tensor (VGT), rate of deformation tensor (RDT) and rate of rotation tensor (RRT). The invariants in these tensors are then used to distinguish the different types of fine-scale flow motions - a method called the.-criterion. Joint probability density functions ( j.p.d.f.s) of the VGT invariants, Q and R, for the Newtonian TBL produce the familiar tear-drop pattern, commonly seen in direct numerical simulations of Newtonian turbulence. Relative to the Newtonian TBL, the polymer-laden flow has significantly attenuated values of R, implying an overall reduction in fluid stretching. The invariants in the RDT, Q(D) and R-D, imply that straining motions of the polymeric flow are more two dimensional compared with the Newtonian flow. Moreover, j.p.d.f.s of Q(D) and the invariant in the RRT QW, suggest that the flow consists of fewer biaxial extensional events and more shear-dominated flow. Few, if any, experimental investigations have measured the 3-D structure of fine-scale motions in a Newtonian and polymer drag-reduced TBL using the.-criterion. We provide the first experimental evidence that supports the notion that an attenuation of fluid stretching, particularly biaxial straining motions, is central to the mechanism of polymer drag reduction.
引用
收藏
页数:38
相关论文
共 50 条
  • [31] Power laws for turbulent boundary layer flow
    Keller, JB
    PHYSICS OF FLUIDS, 2002, 14 (12) : L89 - L89
  • [32] LAMINARIZATION OF A TURBULENT BOUNDARY LAYER IN NOZZLE FLOW
    BACK, LH
    CUFFEL, RF
    MASSIER, PF
    AIAA JOURNAL, 1969, 7 (04) : 730 - &
  • [33] Modelling of turbulent bubble flow in the boundary layer
    Mikielewicz, D
    INTERNATIONAL SYMPOSIUM ON MULTI-PHASE FLOW AND TRANSPORT PHENOMENA, 2001, : 41 - 48
  • [34] Simple Lagrangian formulation of bubbly flow in a turbulent boundary layer (bubbly boundary layer flow)
    Yoshida Y.
    Takahashi Y.
    Kato H.
    Masuko A.
    Watanabe O.
    Journal of Marine Science and Technology, 1997, 2 (1) : 1 - 11
  • [35] Turbulent boundary layer drag reduction with polymer injection
    Hou, Y. X.
    Somandepalli, V. S. R.
    Mungal, M. G.
    ADVANCES IN TURBULENCE XI, 2007, 117 : 38 - 40
  • [36] TURBULENT BOUNDARY-LAYER HEAT-TRANSFER FOR A CONSTANT PROPERTY PARTICLE-LADEN GAS-FLOW
    BOSE, TK
    WARME UND STOFFUBERTRAGUNG-THERMO AND FLUID DYNAMICS, 1980, 14 (03): : 165 - 171
  • [37] Assessment of local blowing and suction in a turbulent boundary layer
    Kim, K
    Sung, HJ
    Chung, MK
    AIAA JOURNAL, 2002, 40 (01) : 175 - 177
  • [38] Influence of local ultrasonic forcing on a turbulent boundary layer
    Park, YS
    Sung, HJ
    EXPERIMENTS IN FLUIDS, 2005, 39 (06) : 966 - 976
  • [39] Influence of local ultrasonic forcing on a turbulent boundary layer
    Young Soo Park
    Hyung Jin Sung
    Experiments in Fluids, 2005, 39 : 966 - 976
  • [40] Assessment of local blowing and suction in a turbulent boundary layer
    Kim, Kyoungyoun
    Sung, Hyung Jin
    Chung, Myung Kyoon
    1600, American Inst. Aeronautics and Astronautics Inc. (40):