Thermodynamics/Dynamics Coupling in Weakly Compressible Turbulent Stratified Fluids
Author(s) -
Rémi Tailleux
Publication year - 2012
Publication title -
isrn thermodynamics
Language(s) - English
Resource type - Journals
eISSN - 2090-5211
pISSN - 2090-5203
DOI - 10.5402/2012/609701
Subject(s) - compressibility , diabatic , physics , geophysical fluid dynamics , nonlinear system , decoupling (probability) , mechanics , equation of state , thermodynamics , statistical physics , classical mechanics , compressible flow , mach number , boussinesq approximation (buoyancy) , heat transfer , adiabatic process , rayleigh number , natural convection , quantum mechanics , control engineering , engineering
In traditional and geophysical fluid dynamics, it is common to describe stratified turbulent fluid flows with low Mach number and small relative density variations by means of the incompressible Boussinesq approximation. Although such an approximation is often interpreted as decoupling the thermodynamics from the dynamics, this paper reviews recent results and derive new ones that show that the reality is actually more subtle and complex when diabatic effects and a nonlinear equation of state are retained. Such an analysis reveals indeed: (1) that the compressible work of expansion/contraction remains of comparable importance as the mechanical energy conversions in contrast to what is usually assumed; (2) in a Boussinesq fluid, compressible effects occur in the guise of changes in gravitational potential energy due to density changes. This makes it possible to construct a fully consistent description of the thermodynamics of incompressible fluids for an arbitrary nonlinear equation of state; (3) rigorous methods based on using the available potential energy and potential enthalpy budgets can be used to quantify the work of expansion/contraction in steady and transient flows, which reveals that is predominantly controlled by molecular diffusive effects, and act as a significant sink of kinetic energy.
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