English

Critical Transitions in Thin Layer Turbulence

Fluid Dynamics 2017-06-23 v1

Abstract

We investigate a model of thin layer turbulence that follows the evolution of the two-dimensional motions u2D(x,y){\bf u}_{_{2D}} (x,y) along the horizontal directions (x,y)(x,y) coupled to a single Fourier mode along the vertical direction (zz) of the form uq(x,y,z)=[vx(x,y)sin(qz),vy(x,y)sin(qz),vz(x,y)cos(qz)]{\bf u}_q (x, y, z)=[v_x(x,y) \sin(qz), v_y(x,y)\sin(qz), v_z(x,y)\cos(qz)\, ], reducing thus the system to two coupled, two-dimensional equations. The reduced dimensionality of the model allows a thorough investigation of the transition from a forward to an inverse cascade of energy as the thickness of the layer H=π/qH=\pi/q is varied. Starting from a thick layer and reducing its thickness it is shown that two critical heights are met (i) one for which the forward unidirectional cascade (similar to three-dimensional turbulence) transitions to a bidirectional cascade transferring energy to both small and large scales and (ii) one for which the bidirectional cascade transitions to a unidirectional inverse cascade when the layer becomes very thin (similar to two-dimensional turbulence). The two critical heights are shown to have different properties close to criticality that we are able to analyze with numerical simulations for a wide range of Reynolds numbers and aspect ratios.

Keywords

Cite

@article{arxiv.1701.05162,
  title  = {Critical Transitions in Thin Layer Turbulence},
  author = {Santiago Jose Benavides and Alexandros Alexakis},
  journal= {arXiv preprint arXiv:1701.05162},
  year   = {2017}
}
R2 v1 2026-06-22T17:53:28.611Z