Jets or vortices - what flows are generated by an inverse turbulent cascade?
arXiv:1608.04628 · doi:10.1103/PhysRevFluids.2.032602
Abstract
An inverse cascade - energy transfer to progressively larger scales - is a salient feature of two-dimensional turbulence. If the cascade reaches the system scale, it creates a coherent flow expected to have the largest available scale and conform with the symmetries of the domain. In a doubly periodic rectangle, the mean flow with zero total momentum was therefore believed to be unidirectional, with two jets along the short side; while for an aspect ratio close to unity, a vortex dipole was expected. Using direct numerical simulations, we show that in fact neither the box symmetry is respected nor the largest scale is realized: the flow is never purely unidirectional since the inverse cascade produces coherent vortices, whose number and relative motion are determined by the aspect ratio. This spontaneous symmetry breaking is closely related to the hierarchy of averaging times. Long-time averaging restores translational invariance due to vortex wandering along one direction, and gives jets whose profile, however, can be deduced neither from the largest-available-scale argument, nor from the often employed maximum-entropy principle or quasi-linear approximation.
References in corpus (7)
- Growing condensate in two-dimensional turbulence
- Random changes of flow topology in two dimensional and geophysical turbulence
- Direct Statistical Simulation of Out-of-Equilibrium Jets
- Universal profile of the vortex condensate in two-dimensional turbulence
- Astrophysical Fluid Dynamics via Direct Statistical Simulation
- Structure of coherent vortices generated by the inverse cascade of two-dimensional turbulence in a finite box
- Turbulence on hyperbolic plane: the fate of inverse cascade
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- Cascades and transitions in turbulent flows
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- Velocity statistics inside coherent vortices generated by the inverse cascade of turbulence
- Impact of domain anisotropy on the inverse cascade in geostrophic turbulent convection
- The culmination of an inverse cascade: mean flow and fluctuations
- Inverse cascades of kinetic energy and thermal variance in three-dimensional horizontally extended turbulent convection
- How vortices and shocks provide for a flux loop in two-dimensional compressible turbulence
- Theoretical prediction of Reynolds stresses and velocity profiles for barotropic turbulent jets
- Dimensional Reduction of Direct Statistical Simulation
- Nonuniversal transition to condensate formation in two-dimensional turbulence
- Direct Statistical Simulation of Jets and Vortices in 2D Flows
- Profile of a Two-Dimensional Vortex Condensate Beyond the Universal Limit
- Scaling of the Maximum-Entropy Turbulence Energy Spectra
- Statistical state dynamics of weak jets in barotropic beta-plane turbulence
- Two-dimensional turbulence with local interactions: statistics of the condensate
- Pair correlation function of vorticity in a coherent vortex
- Correlations of vorticity inside a coherent vortex
- Statistics of inhomogeneous turbulence in large scale quasi-geostrophic dynamics
- Statistical analysis of vortex condensate motion in two-dimensional turbulence
- Correlations in a weakly interacting two-dimensional random flow
- Out-of-equilibrium fluxes shape the self-organization of locally-interacting turbulence
- The effects of no-slip boundaries and external force torque on two-dimensional turbulence in a square domain
- Irreversible energy extraction from negative temperature two-dimensional turbulence
- Correlations of fluctuations of two-dimensional flow forced by a random force on top of a shear flow
- Profile of a coherent vortex in two-dimensional turbulence at static pumping