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    Boussinesq and Anelastic Approximations Revisited: Potential Energy Release during Thermobaric Instability

    Source: Journal of Physical Oceanography:;2005:;Volume( 035 ):;issue: 008::page 1359
    Author:
    Ingersoll, Andrew P.
    DOI: 10.1175/JPO2756.1
    Publisher: American Meteorological Society
    Abstract: Expressions are derived for the potential energy of a fluid whose density depends on three variables: temperature, pressure, and salinity. The thermal expansion coefficient is a function of depth, and the application is to thermobaric convection in the oceans. Energy conservation, with conversion between kinetic and potential energies during adiabatic, inviscid motion, exists for the Boussinesq and anelastic approximations but not for all approximate systems of equations. In the Boussinesq/anelastic system, which is a linearization of the thermodynamic variables, the expressions for potential energy involve thermodynamic potentials for salinity and potential temperature. Thermobaric instability can occur with warm salty water either above or below cold freshwater. In both cases the fluid may be unstable to large perturbations even though it is stable to small perturbations. The energy per mass of this finite-amplitude instability varies as the square of the layer thickness. With a 4-K temperature difference and a 0.6-psu salinity difference across a layer that is 4000 m thick, the stored potential energy is ?0.3 m2?s?2, which is comparable to the kinetic energy of the major ocean currents. This potential could be released as kinetic energy in a single large event. Thermobaric effects cause parcels moving adiabatically to follow different neutral trajectories. A cold fresh parcel that is less dense than a warm salty parcel near the surface may be more dense at depth. Examples are given in which two isopycnal trajectories cross at one place and differ in depth by 1000 m or more at another.
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      Boussinesq and Anelastic Approximations Revisited: Potential Energy Release during Thermobaric Instability

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    contributor authorIngersoll, Andrew P.
    date accessioned2017-06-09T17:17:50Z
    date available2017-06-09T17:17:50Z
    date copyright2005/08/01
    date issued2005
    identifier issn0022-3670
    identifier otherams-82634.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4225770
    description abstractExpressions are derived for the potential energy of a fluid whose density depends on three variables: temperature, pressure, and salinity. The thermal expansion coefficient is a function of depth, and the application is to thermobaric convection in the oceans. Energy conservation, with conversion between kinetic and potential energies during adiabatic, inviscid motion, exists for the Boussinesq and anelastic approximations but not for all approximate systems of equations. In the Boussinesq/anelastic system, which is a linearization of the thermodynamic variables, the expressions for potential energy involve thermodynamic potentials for salinity and potential temperature. Thermobaric instability can occur with warm salty water either above or below cold freshwater. In both cases the fluid may be unstable to large perturbations even though it is stable to small perturbations. The energy per mass of this finite-amplitude instability varies as the square of the layer thickness. With a 4-K temperature difference and a 0.6-psu salinity difference across a layer that is 4000 m thick, the stored potential energy is ?0.3 m2?s?2, which is comparable to the kinetic energy of the major ocean currents. This potential could be released as kinetic energy in a single large event. Thermobaric effects cause parcels moving adiabatically to follow different neutral trajectories. A cold fresh parcel that is less dense than a warm salty parcel near the surface may be more dense at depth. Examples are given in which two isopycnal trajectories cross at one place and differ in depth by 1000 m or more at another.
    publisherAmerican Meteorological Society
    titleBoussinesq and Anelastic Approximations Revisited: Potential Energy Release during Thermobaric Instability
    typeJournal Paper
    journal volume35
    journal issue8
    journal titleJournal of Physical Oceanography
    identifier doi10.1175/JPO2756.1
    journal fristpage1359
    journal lastpage1369
    treeJournal of Physical Oceanography:;2005:;Volume( 035 ):;issue: 008
    contenttypeFulltext
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