4.7 Article

Profile of a two-dimensional vortex condensate beyond the universal limit

期刊

PHYSICAL REVIEW E
卷 106, 期 2, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevE.106.025102

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  1. Russian Ministry of Science and Higher Education [075-15-2022-1099]
  2. Foundation for the Advancement of Theoretical Physics and Mathematics BASIS [22-1-3-24-1]

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This study conducts a numerical hyperviscous study of the spatial vorticity profile within a coherent vortex dipole, which emerges from an inverse turbulent cascade in a finite two-dimensional periodic domain. The results show that the vorticity profile becomes steeper with a spatially homogeneous forcing and finite pumping scale, with the difference increasing with the pumping scale but decreasing with the Reynolds number at the forcing scale.
It is well known that an inverse turbulent cascade in a finite (2 pi x 2 pi) two-dimensional periodic domain leads to the emergence of a system-sized coherent vortex dipole. We report a numerical hyperviscous study of the spatial vorticity profile inside one of the vortices. The exciting force was shortly correlated in time, random in space, and had a correlation length l(f) = 2 pi/k(f) with k(f )ranging from 100 to 12.5. Previously, it was found that in the asymptotic limit of small-scale forcing, the vorticity exhibits the power-law behavior omega(r) = (3 is an element of/alpha)(1/2)r(-1), where r is the distance to the vortex center, alpha is the bottom friction coefficient, and is an element of is the inverse energy flux. Now we show that for a spatially homogeneous forcing with finite k(f) the vorticity profile becomes steeper, with the difference increasing with the pumping scale but decreasing with the Reynolds number at the forcing scale. Qualitatively, this behavior is related to a decrease in the effective pumping of the coherent vortex with distance from its center. To support this statement, we perform an additional simulation with spatially localized forcing, in which the effective pumping of the coherent vortex, on the contrary, increases with r, and show that in this case the vorticity profile can be flatter than the asymptotic limit.

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