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Mean flow anisotropy without waves in rotating turbulence

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arxiv 1902.07984 v2 pith:TG47YXRQ submitted 2019-02-21 physics.flu-dyn

classification physics.flu-dyn
keywords rotationanisotropymechanismwavesanisotropicaverageaxiscolumns
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We tackle the question of how anisotropy in flows subject to background rotation favours structures elongated along the rotation axis, especially in turbulent flows. A new, wave-free mechanism is identified that challenges the current understanding of the process. Inertial waves propagating near the rotation axis are generally accepted as the most efficient mechanism to transport energy anisotropically. They have been shown to transfer energy to large anisotropic, columnar structures. Nevertheless, they cannot account for the formation of simpler steady anisotropic phenomena such as Taylor columns. Here, we experimentally show that more than one mechanism involving the Coriolis force may promote anisotropy. In particular, in the limit of fast rotation, that is at low Rossby number, anisotropy favouring the direction of rotation of the average of a turbulent flow arises neither because of inertial waves nor following the same mechanism as in steady Taylor columns, but from an interplay between the Coriolis force and average advection.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Transition between advection and inertial wave propagation in rotating turbulence

    physics.flu-dyn 2019-08 conditional novelty 7.0 of 10

    A turbulent front in a rotating tank switches from advection to inertial-wave propagation scale by scale when the local Rossby number kU/(2Ω) crosses one.

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