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    Turbulence in the Ocean, Atmosphere, Galaxy, and Universe

    Source: Applied Mechanics Reviews:;1996:;volume( 049 ):;issue: 005::page 299
    Author:
    Carl H. Gibson
    DOI: 10.1115/1.3101929
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Flows in natural bodies of fluid often become turbulent, with eddy-like motions dominated by inertial-vortex forces. Buoyancy, Coriolis, viscous, self-gravitational, electromagnetic, and other force constraints produce a complex phase space of wave-like hydrodynamic states that interact with turbulence eddies, masquerade as turbulence, and preserve information about previous hydrodynamic states as fossil turbulence. Evidence from the ocean, atmosphere, galaxy and universe are compared with universal similarity hypotheses of Kolmogorov (1941, 1962) for turbulence velocity u, and extensions to scalar fields θ like temperature mixed by turbulence. Universal u and θ spectra of natural flows can be inferred from laboratory and computer simulations with satisfactory accuracy, but higher order spectra and the intermittency constant u of the third Kolmogorov hypothesis (1962) require measurements at the much larger Reynolds numbers found only in nature. Information about previous hydrodynamic states is preserved by Schwarz viscous and turbulence lengths and masses of self-gravitating condensates (rarely by the classical Jeans length and mass), as it is by Ozmidov, Hopfinger and Fernando scales in hydrophysical fields of the ocean and atmosphere. Viscous-gravitational formation occurred 104 -105 y after the Big Bang for supercluster, cluster, and then galaxy masses of the plasma, producing the first turbulence. Condensation after plasma neutralization of the H-4 He gas was to a primordial fog of sub-solar particles that persists today in galactic halos as dark matter. These gradually formed all stars, star clusters, etc (humans!) within.
    keyword(s): Universe , Turbulence , Oceans , Spectra (Spectroscopy) , Eddies (Fluid dynamics) , Plasmas (Ionized gases) , Force , Flow (Dynamics) , Buoyancy , Temperature , Condensation , Measurement , Particulate matter , Motion , Matter , Waves , Phase space , Scalar field theory , Solar energy , Vortices , Computer simulation , Reynolds number , Fluids AND Big bang theory ,
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      Turbulence in the Ocean, Atmosphere, Galaxy, and Universe

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    https://yetl.yabesh.ir/yetl1/handle/yetl/116319
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    contributor authorCarl H. Gibson
    date accessioned2017-05-08T23:48:56Z
    date available2017-05-08T23:48:56Z
    date copyrightMay, 1996
    date issued1996
    identifier issn0003-6900
    identifier otherAMREAD-25710#299_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/116319
    description abstractFlows in natural bodies of fluid often become turbulent, with eddy-like motions dominated by inertial-vortex forces. Buoyancy, Coriolis, viscous, self-gravitational, electromagnetic, and other force constraints produce a complex phase space of wave-like hydrodynamic states that interact with turbulence eddies, masquerade as turbulence, and preserve information about previous hydrodynamic states as fossil turbulence. Evidence from the ocean, atmosphere, galaxy and universe are compared with universal similarity hypotheses of Kolmogorov (1941, 1962) for turbulence velocity u, and extensions to scalar fields θ like temperature mixed by turbulence. Universal u and θ spectra of natural flows can be inferred from laboratory and computer simulations with satisfactory accuracy, but higher order spectra and the intermittency constant u of the third Kolmogorov hypothesis (1962) require measurements at the much larger Reynolds numbers found only in nature. Information about previous hydrodynamic states is preserved by Schwarz viscous and turbulence lengths and masses of self-gravitating condensates (rarely by the classical Jeans length and mass), as it is by Ozmidov, Hopfinger and Fernando scales in hydrophysical fields of the ocean and atmosphere. Viscous-gravitational formation occurred 104 -105 y after the Big Bang for supercluster, cluster, and then galaxy masses of the plasma, producing the first turbulence. Condensation after plasma neutralization of the H-4 He gas was to a primordial fog of sub-solar particles that persists today in galactic halos as dark matter. These gradually formed all stars, star clusters, etc (humans!) within.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleTurbulence in the Ocean, Atmosphere, Galaxy, and Universe
    typeJournal Paper
    journal volume49
    journal issue5
    journal titleApplied Mechanics Reviews
    identifier doi10.1115/1.3101929
    journal fristpage299
    journal lastpage315
    identifier eissn0003-6900
    keywordsUniverse
    keywordsTurbulence
    keywordsOceans
    keywordsSpectra (Spectroscopy)
    keywordsEddies (Fluid dynamics)
    keywordsPlasmas (Ionized gases)
    keywordsForce
    keywordsFlow (Dynamics)
    keywordsBuoyancy
    keywordsTemperature
    keywordsCondensation
    keywordsMeasurement
    keywordsParticulate matter
    keywordsMotion
    keywordsMatter
    keywordsWaves
    keywordsPhase space
    keywordsScalar field theory
    keywordsSolar energy
    keywordsVortices
    keywordsComputer simulation
    keywordsReynolds number
    keywordsFluids AND Big bang theory
    treeApplied Mechanics Reviews:;1996:;volume( 049 ):;issue: 005
    contenttypeFulltext
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