Measurement of wall conductive heat flux in turbulent gas flow by laser beam deflection

The wall conductive flux in gas for a turbulent and homogeneous flow in a channel is directly deduced from a laser beam deflection technique. The main advantage of this method is the elimination of the radiative flux contribution. The beam deflection is due to the refractive index gradient field ind...

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Published inInternational journal of heat and mass transfer Vol. 37; no. 12; pp. 1759 - 1771
Main Authors Ammouri, F.El, Taine, J.
Format Journal Article
LanguageEnglish
Published Oxford Elsevier Ltd 1994
Elsevier
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Abstract The wall conductive flux in gas for a turbulent and homogeneous flow in a channel is directly deduced from a laser beam deflection technique. The main advantage of this method is the elimination of the radiative flux contribution. The beam deflection is due to the refractive index gradient field induced by a temperature gradient field at constant pressure. Experimental data are treated by using a parameter estimation method. Experimental fluxes associated with Reynolds number based on the hydraulic diameter in the range 1.75 × 10 4−3.5 × 10 4 and a temperature gradient in the range 60–120 K mm −1 agree with the results of a two-dimensional turbulence model when taking into account all uncertainty causes.
AbstractList The wall conductive flux in gas for a turbulent and homogeneous flow in a channel is directly deduced from a laser beam deflection technique. The main advantage of this method is the elimination of the radiative flux contribution. The beam deflection is due to the refractive index gradient field induced by a temperature gradient field at constant pressure. Experimental data are treated by using a parameter estimation method. Experimental fluxes associated with Reynolds number based on the hydraulic diameter in the range 1.75 × 10 4−3.5 × 10 4 and a temperature gradient in the range 60–120 K mm −1 agree with the results of a two-dimensional turbulence model when taking into account all uncertainty causes.
The wall conductive flux in gas for a turbulent and homogeneous flow in a channel is directly deduced from a laser beam deflection technique. The main advantage of this method is the elimination of the radiative flux contribution. The beam deflection is due to the refractive index gradient field induced by a temperature gradient field at constant pressure. Experimental data are treated by using a parameter estimation method. Experimental fluxes associated with Reynolds number based on the hydraulic diameter in the range 1.75x10 super(4)-3.5x10 super(4) and a temperature gradient in the range 60-120 K mm super(-1) agree with the results of a two-dimensional turbulence model when taking into account all uncertainty causes.
Author Ammouri, F.El
Taine, J.
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Issue 12
Keywords Temperature distribution
Turbulent flow
Pipe flow
Measuring methods
Optical method
Air
Experimental study
Laser beams
Heat transfer
Language English
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Snippet The wall conductive flux in gas for a turbulent and homogeneous flow in a channel is directly deduced from a laser beam deflection technique. The main...
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SubjectTerms Convection and heat transfer
Exact sciences and technology
Fluid dynamics
Fundamental areas of phenomenology (including applications)
Instrumentation for fluid dynamics
Physics
Turbulent flows, convection, and heat transfer
Title Measurement of wall conductive heat flux in turbulent gas flow by laser beam deflection
URI https://dx.doi.org/10.1016/0017-9310(94)90065-5
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Volume 37
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