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The effect of a passive cross-stream temperature gradient on the evolution of temperature variance and heat flux in grid turbulence

Published online by Cambridge University Press:  20 April 2006

A. Sirivat
Affiliation:
Sibley School of Mechanical and Aerospace Engineering, Cornell University, Ithaca, NY 14853 Present address: Department of Chemical Engineering, The Johns Hopkins University, Baltimore, Maryland 21218.
Z. Warhaft
Affiliation:
Sibley School of Mechanical and Aerospace Engineering, Cornell University, Ithaca, NY 14853

Abstract

The evolution of temperature variance and heat flux in decaying grid turbulence with a linear cross-stream temperature gradient is studied by producing the temperature gradient by means of two different methods: (a) by placing a ‘mandoline’ (Warhaft & Lumley 1978) downstream from the grid but with its wires differentially heated for the present study, and (b) by differentially heating ribbons of nichrome (a ‘toaster’) placed in the plenum chamber of the wind tunnel. For the former method the initial thermal/mechanical lengthscale ratio Lθ/L was varied by changing the mandoline configuration. For this method it is shown that the gradient causes Lθ/L to equilibrate to a value of about 0·9 regardless of its initial value, and that when this value is achieved the temperature variance increases approximately linearly with time. The toaster was used to produce a temperature gradient without the associated initial temperature variance (and initial thermal lengthscale) that is necessarily produced by the mandoline wires; for the toaster the temperature variance was produced solely by the action of turbulence against the temperature gradient. For this experiment too, the thermal variance grew linearly with time, and Lθ/L was approximately the same as the equilibrium value for the mandoline experiments. The equilibrium value of the ratio of temperature-variance production to temperature-variance dissipation was approximately 1·5 for all of the experiments. The ratio of the mechanical-dissipation/thermal-dissipation timescales was also found to equilibrate, but there was considerably more scatter in the data for this parameter. The values of the equilibrium length- and timescale ratios were not affected by the magnitude of the temperature gradient, which was varied for both experiments. Good transverse homogeneity in the thermal field was achieved in all cases, in contrast with previous experiments (using heated grids).

Type
Research Article
Copyright
© 1983 Cambridge University Press

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References

Alexopoulos, C. C. & Keffer, J. F. 1971 Turbulent wake in a passively stratified field Phys. Fluids 14, 216224.Google Scholar
Comte-Bellot, G. & Corrsin, S. 1966 The use of a contraction to improve the isotropy of grid-generated turbulence J. Fluid Mech. 25, 257682.Google Scholar
Corrsin, S. 1952 Heat transfer in isotropic turbulence J. Appl. Phys. 23, 113118.Google Scholar
Durbin, P. A. 1980 A stochastic model of two-particle dispersion and concentration fluctuations in homogeneous turbulence J. Fluid Mech. 100, 279302.Google Scholar
Sirivat, A. 1983 Thesis, Sibley School of Mechanical and Aerospace Engineering, Cornell University.
Sirivat, A. & Warhaft, Z. 1982 The mixing of passive helium and temperature fluctuations in grid turbulence J. Fluid Mech. 120, 475504.Google Scholar
Sreenivasan, K. R. & Tavoularis, S. 1980 On the skewness of the temperature derivative in turbulent flows J. Fluid Mech. 101, 783795.Google Scholar
Sreenivasan, K. R., Tavoularis, S., Henry, R. & Corrsin, S. 1980 Temperature fluctuations and scales in grid-generated turbulence. J. Fluid Mech. 100, 597622.Google Scholar
Sullivan, P. J. 1976 Dispersion of line source in grid turbulence Phys. Fluids 19, 159161.Google Scholar
Tennekes, H. & Lumley, J. L. 1972 A First Course in Turbulence. MIT Press.
Venkataramani, K. S. & Chevray, R. 1978 Statistical features of heat transfer in grid generated turbulence – constant-gradient case J. Fluid Mech. 86, 513543.Google Scholar
Warhaft, Z. 1980 An experimental study of the effect of uniform strain on thermal fluctuations in grid-generated turbulence J. Fluid Mech. 99, 545573.Google Scholar
Warhaft, Z. & Lumley, J. L. 1978 An experimental study of the decay of temperature fluctuations in grid-generated turbulence J. Fluid Mech. 88, 659684.Google Scholar
Wiskind, H. K. 1962 A uniform gradient turbulent transport experiment J. Geophys. Res. 67, 30333048.Google Scholar
Yeh, T. T. & VAN ATTA, C. W. 1973 Spectral transfer of scalar and velocity fields in heated-grid turbulence J. Fluid Mech. 58, 233261.Google Scholar