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Observations of dispersion of entrained fluid in the self-preserving region of a turbulent jet

Published online by Cambridge University Press:  21 April 2006

D. Joseph Shlien
Affiliation:
Mechanical Engineering Department, University of Nebraska - Lincoln, Lincoln, NE 68588, USA

Abstract

Ambient fluid of a submerged water jet was continuously tagged with fluorescent dye at a point outside the turbulent region (at 33 jet nozzle diameters from the jet exit). This made it possible to follow the tagged entrained fluid to 73 jet diameters downstream of the exit, a distance unattainable by other methods. The dispersion of the tagged fluid in a plane containing the jet axis and the tagging source was observed and recorded using photography and simple digital image-processing techniques. Most of the entrainment activity appeared to be the result of engulfment by the large-scale structures over an axial distance of ± 1.7B from the source where B is the half-peak velocity radius. The entrained fluid crossed the jet centreline within a downstream distance of Δx = 1.5B.

Downstream of the entrainment region, the spread rate of the tagged entrained fluid was close to that of the turbulent jet fluid. However, the peak mean concentration of the tagged entrained fluid was located near the r/x = 0.1 line closest to the tagging source and shifted very slowly towards the jet centreline. A self-preserving distribution of the mean concentration appears to have been approached after a distance of 6B downstream from the tagging source but further verification is needed owing to experimental uncertainties.

A small fraction of the tagged entrained fluid was found on the side of the jet remote from the tagging source. On rare occurrences, tagged entrained fluid was observed at the interface most remote from the source.

Type
Research Article
Copyright
© 1987 Cambridge University Press

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References

Anderson, P., LaRue, J. C. & Libby, P. A. 1979 Preferential entrainment in a two-dimensional turbulent jet in a moving stream. Phys. Fluids 22, 18571861.Google Scholar
Antonia, R. A., Prabhu, A. & Stephenson, S. E. 1975 Conditionally sampled measurements in a heated turbulent jet. J. Fluid Mech. 72, 455480.Google Scholar
Becker, H. A., Hottel, H. C. & Williams, G. C. 1967 The nozzle-fluid concentration field of the round, turbulent, free jet. J. Fluid Mech. 30, 285303.Google Scholar
Bevilaqua, P. M. & Lykoudis, P. S. 1977 Some observations on the mechanism of entrainment. AIAA J. 15, 11941196.Google Scholar
Birch, A. D., Brown, D. R., Dodson, M. G. & Thomas, J. R. 1978 The turbulent concentration field of a methane jet. J. Fluid Mech. 88, 431449.Google Scholar
Chevray, R. & Tutu, N. K. 1978 Intermittency and preferential transport of heat in a round jet. J. Fluid Mech. 88, 133160.Google Scholar
Chevray, R. 1984 Entrainment in turbulent flows: mechanisms and implications. In Turbulence and Chaotic Phenomena in Fluids (ed. T. Tatsumi), pp. 365369. Elsevier.
Corrsin, S. 1943 Investigation of flow in an axially symmetric heated jet of air. NACA Wartime Rep. W-94.
Corrsin, S. & Uberoi, M. S. 1951 Spectra and diffusion in a round turbulent jet. NACA Rep. 1040.
Dahm, W. J. A. & Dimotakis, P. E. 1985 Measurements of entrainment and mixing in turbulent jets. AIAA paper 85–0056.
Hill, B. J. 1972 Measurement of local entrainment rate in the initial region of axisymmetric turbulent air jets. J. Fluid Mech. 51, 773779.Google Scholar
Hinze, J. O. & Van der Hegge Zijnen, B. G. 1951 General Discussion on Heat Transfer, p. 188. IMechE, London.
Hunt, J. C. R. 1985 Turbulent diffusion from sources in complex flows. Ann. Rev. Fluid Mech. 17, 447486.Google Scholar
Koochesfahani, M. M. & Dimotakis, P. E. 1984 Laser induced fluorescence measurements of concentration in a plane mixing layer. AIAA paper 84–0198.
Omer, S. & Chevray, R. 1982 Entrainment mechanisms in turbulent flows. Proc. 9th US Natl Congress of Appl. Mech.
Ricou, F. P. & Spalding, D. B. 1961 Measurements of entrainment by axisymmetrical turbulent jets. J. Fluid Mech. 11, 2133.Google Scholar
Shaughnessy, E. J. & Morton, J. B. 1977 Laser light-scattering measurements of particle concentration in a turbulent jet. J. Fluid Mech. 80, 129148.Google Scholar
Shlien, D. J. & Hussain, A. K. M. F. 1982 Visualization of the entraining flow in the self-preserving region of a turbulent plane jet. J. Flow Vis. Soc. of Japan 2, 587593.Google Scholar