Condensate formation and multiscale dynamics in two-dimensional active suspensions

被引:20
作者
Linkmann, Moritz [1 ]
Marchetti, M. Cristina [2 ]
Boffetta, Guido [3 ,4 ]
Eckhardt, Bruno [1 ]
机构
[1] Philipps Univ Marburg, Fachbereich Phys, D-35032 Marburg, Germany
[2] Univ Calif Santa Barbara, Dept Phys, Santa Barbara, CA 93106 USA
[3] Univ Torino, Dipartimento Fis, Via P Giuria 1, I-10125 Turin, Italy
[4] Univ Torino, INFN, Via P Giuria 1, I-10125 Turin, Italy
基金
美国国家科学基金会;
关键词
TURBULENCE; HYDRODYNAMICS; MOTION; STATES;
D O I
10.1103/PhysRevE.101.022609
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 collective effects of microswimmers in active suspensions result in active turbulence, a spatiotemporally chaotic dynamics at mesoscale, which is characterized by the presence of vortices and jets at scales much larger than the characteristic size of the individual active constituents. To describe this dynamics, Navier-Stokes-based one-fluid models driven by small-scale forces have been proposed. Here, we provide a justification of such models for the case of dense suspensions in two dimensions (2D). We subsequently carry out an in-depth numerical study of the properties of one-fluid models as a function of the active driving in view of possible transition scenarios from active turbulence to large-scale pattern, referred to as condensate, formation induced by the classical inverse energy cascade in Newtonian 2D turbulence. Using a one-fluid model it was recently shown [M. Linkmann et al., Phys. Rev. Lett 122, 214503 (2019)] that two-dimensional active suspensions support two nonequilibrium steady states, one with a condensate and one without, which are separated by a subcritical transition. Here, we report further details on this transition such as hysteresis and discuss a low-dimensional model that describes the main features of the transition through nonlocal-in-scale coupling between the small-scale driving and the condensate.
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页数:16
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共 61 条
  • [1] Shell-to-shell energy transfer in magnetohydrodynamics. I. Steady state turbulence
    Alexakis, A
    Mininni, PD
    Pouquet, A
    [J]. PHYSICAL REVIEW E, 2005, 72 (04):
  • [2] Cascades and transitions in turbulent flows
    Alexakis, A.
    Biferale, L.
    [J]. PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS, 2018, 767 : 1 - 101
  • [3] Rotating Taylor-Green flow
    Alexakis, A.
    [J]. JOURNAL OF FLUID MECHANICS, 2015, 769 : 46 - 78
  • [4] Localness of energy cascade in hydrodynamic turbulence. II. Sharp spectral filter
    Aluie, Hussein
    Eyink, Gregory L.
    [J]. PHYSICS OF FLUIDS, 2009, 21 (11) : 1 - 16
  • [5] [Anonymous], 1969, PHYS FLUIDS, DOI DOI 10.1063/1.1692445
  • [6] The Onset of Turbulence in Pipe Flow
    Avila, Kerstin
    Moxey, David
    de Lozar, Alberto
    Avila, Marc
    Barkley, Dwight
    Hof, Bjorn
    [J]. SCIENCE, 2011, 333 (6039) : 192 - 196
  • [7] Statistical mechanics and hydrodynamics of bacterial suspensions
    Baskaran, Aparna
    Marchetti, M. Cristina
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2009, 106 (37) : 15567 - 15572
  • [8] Two-Dimensional Turbulence
    Boffetta, Guido
    Ecke, Robert E.
    [J]. ANNUAL REVIEW OF FLUID MECHANICS, VOL 44, 2012, 44 : 427 - 451
  • [9] New class of turbulence in active fluids
    Bratanov, Vasil
    Jenko, Frank
    Frey, Erwin
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2015, 112 (49) : 15048 - 15053
  • [10] Emergence of macroscopic directed motion in populations of motile colloids
    Bricard, Antoine
    Caussin, Jean-Baptiste
    Desreumaux, Nicolas
    Dauchot, Olivier
    Bartolo, Denis
    [J]. NATURE, 2013, 503 (7474) : 95 - 98