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 in | International journal of heat and mass transfer Vol. 37; no. 12; pp. 1759 - 1771 |
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Main Authors | , |
Format | Journal Article |
Language | English |
Published |
Oxford
Elsevier Ltd
1994
Elsevier |
Subjects | |
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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. |
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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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Cites_doi | 10.1115/1.3450806 10.1115/1.3244462 10.1051/rphysap:01989002403040100 10.1007/BF00198448 10.2307/1266283 10.1115/1.3240815 10.1115/1.2911280 10.1016/0010-2180(92)90036-O 10.2514/3.9086 10.1016/0010-2180(79)90006-3 10.1063/1.1719344 10.1364/AO.26.000885 10.1051/rphysap:01982001704020100 10.1016/0017-9310(77)90171-5 10.1016/0017-9310(88)90130-5 10.1017/S0022112087000661 10.1016/0017-9310(89)90135-X 10.1007/BF00616610 10.1364/AO.20.001333 10.1016/0017-9310(72)90076-2 10.1364/AO.27.003754 10.1016/0017-9310(92)90128-F |
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Keywords | Temperature distribution Turbulent flow Pipe flow Measuring methods Optical method Air Experimental study Laser beams Heat transfer |
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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 |
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