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Turbulence comes in bursts in stably stratified flows

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arxiv 1308.6564 v1 pith:UPVRW7BV submitted 2013-08-29 physics.flu-dyn physics.geo-ph

classification physics.flu-dynphysics.geo-ph
keywords burstsstableflowflowssimplestablystratifiedstronger
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There is a clear distinction between simple laminar and complex turbulent fluids. But in some cases, as for the nocturnal planetary boundary layer, a stable and well-ordered flow can develop intense and sporadic bursts of turbulent activity which disappear slowly in time. This phenomenon is ill-understood and poorly modeled; and yet, it is central to our understanding of weather and climate dynamics. We present here a simple model which shows that in stably stratified turbulence, the stronger bursts can occur when the flow is expected to be more stable. The bursts are generated by a rapid non-linear amplification of energy stored in waves, and are associated with energetic interchanges between vertical velocity and temperature (or density) fluctuations. Direct numerical simulations on grids of 2048^3 points confirm this somewhat paradoxical result of measurably stronger events for more stable flows, displayed not only in the temperature and vertical velocity derivatives, but also in the amplitude of the fields themselves.

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

  1. Characterization of local energy transfer in large-scale intermittent stratified turbulent flows via coarse graining

    physics.flu-dyn 2024-12 conditional novelty 6.0 of 10

    Using coarse-grained Boussinesq simulations, strong vertical drafts are associated with enhanced downscale kinetic transfer and bidirectional potential-energy transfer near the buoyancy scale.

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