Nested travelling wave structures in elastoinertial turbulence

被引:2
|
作者
Kumar, Manish [1 ]
Graham, Michael D. [1 ]
机构
[1] Univ Wisconsin Madison, Dept Chem & Biol Engn, 1415 Engn Dr, Madison, WI 53706 USA
关键词
viscoelasticity; nonlinear instability; DRAG REDUCTION; CONFORMATION TENSOR; FLOW; TRANSITION; DYNAMICS; WAKE;
D O I
10.1017/jfm.2024.597
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Elastoinertial turbulence (EIT) is a chaotic flow resulting from the interplay between inertia and viscoelasticity in wall-bounded shear flows. Understanding EIT is important because it is thought to set a limit on the effectiveness of turbulent drag reduction in polymer solutions. Here, we analyse simulations of two-dimensional EIT in channel flow using spectral proper orthogonal decomposition (SPOD), discovering a family of travelling wave structures that capture the sheetlike stress fluctuations that characterise EIT. The frequency-dependence of the leading SPOD mode contains distinct peaks and the mode structures corresponding to these peaks exhibit well-defined travelling structures. The structure of the dominant travelling mode exhibits shift-reflect symmetry similar to the viscoelasticity-modified Tollmien-Schlichting (TS) wave, where the velocity fluctuation in the travelling mode is characterised by large-scale regular structures spanning the channel and the polymer stress field is characterised by thin, inclined sheets of high polymer stress localised at the critical layers near the channel walls. The travelling structures corresponding to the higher-frequency modes have a very similar structure, but are nested in a region roughly bounded by the critical layer positions of the next-lower-frequency mode. A simple theory based on the idea that the critical layers of mode kappa form the 'walls' for the structure of mode kappa +1 yields quantitative agreement with the observed wave speeds and critical layer positions, indicating self-similarity between the structures. The physical idea behind this theory is that the sheetlike localised stress fluctuations in the critical layer prevent velocity fluctuations from penetrating them.
引用
收藏
页数:18
相关论文
共 50 条
  • [21] Radial propagation of structures in drift wave turbulence
    Windisch, T.
    Grulke, O.
    Klinger, T.
    PHYSICS OF PLASMAS, 2006, 13 (12)
  • [22] Vortex merging and splitting: A route to elastoinertial turbulence in Taylor-Couette flow
    Lacassagne, T.
    Cagney, N.
    Gillissen, J. J. J.
    Balabani, S.
    PHYSICAL REVIEW FLUIDS, 2020, 5 (11)
  • [23] On Lump, Periodic and Travelling Wave Structures to the Generalized Breaking Soliton Model
    Tariq K.U.
    Wazwaz A.M.
    Tufail R.N.
    International Journal of Applied and Computational Mathematics, 2022, 8 (6)
  • [24] Application of Travelling Wave Method for dynamic analysis of plane frame structures
    Caglar, N. Merve
    Safak, Erdal
    BULLETIN OF EARTHQUAKE ENGINEERING, 2019, 17 (03) : 1361 - 1377
  • [25] Equivalent Circuit Modelling of Travelling Wave Accelerating Structures and Its Applications
    Esfahani, Nasrin Nasr
    Kramer, Patrick
    Vollinger, Christine
    2017 47TH EUROPEAN MICROWAVE CONFERENCE (EUMC), 2017, : 572 - 575
  • [26] Application of Travelling Wave Method for dynamic analysis of plane frame structures
    N. Merve Çağlar
    Erdal Şafak
    Bulletin of Earthquake Engineering, 2019, 17 : 1361 - 1377
  • [27] Coherent structures of elastoinertial instabilities in Taylor-Couette flows
    Boulafentis, T.
    Lacassagne, T.
    Cagney, N.
    Balabani, S.
    JOURNAL OF FLUID MECHANICS, 2024, 986
  • [28] GENERATION OF DIPOLAR STRUCTURES IN DRIFT-WAVE TURBULENCE
    SHAPIRO, VD
    DIAMOND, PH
    LEBEDEV, VB
    SOLOVIEV, GI
    SHEVCHENKO, VI
    PLASMA PHYSICS AND CONTROLLED FUSION, 1993, 35 (08) : 1033 - 1049
  • [29] Kinetic Alfven wave turbulence and formation of localized structures
    Sharma, R. P.
    Modi, K. V.
    PHYSICS OF PLASMAS, 2013, 20 (08)
  • [30] Self-excitation of travelling-wave tubes with nonuniform slow-wave structures
    Man'kin, I.A.
    Filatov, V.A.
    Soviet journal of communications technology & electronics, 1991, 36 (15): : 117 - 123