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The radiation of sound by the instability waves of a compressible plane turbulent shear layerThe problem of acoustic radiation generated by instability waves of a compressible plane turbulent shear layer is solved. The solution provided is valid up to the acoustic far-field region. It represents a significant improvement over the solution obtained by classical hydrodynamic-stability theory which is essentially a local solution with the acoustic radiation suppressed. The basic instability-wave solution which is valid in the shear layer and the near-field region is constructed in terms of an asymptotic expansion using the method of multiple scales. This solution accounts for the effects of the slightly divergent mean flow. It is shown that the multiple-scales asymptotic expansion is not uniformly valid far from the shear layer. Continuation of this solution into the entire upper half-plane is described. The extended solution enables the near- and far-field pressure fluctuations associated with the instability wave to be determined. Numerical results show that the directivity pattern of acoustic radiation into the stationary medium peaks at 20 degrees to the axis of the shear layer in the downstream direction for supersonic flows. This agrees qualitatively with the observed noise-directivity patterns of supersonic jets.
Document ID
19800055366
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Tam, C. K. W.
(Florida State University Tallahassee, Fla., United States)
Morris, P. J.
(Pennsylvania State University University Park, Pa., United States)
Date Acquired
August 10, 2013
Publication Date
May 29, 1980
Publication Information
Publication: Journal of Fluid Mechanics
Volume: 98
Subject Category
Acoustics
Accession Number
80A39536
Funding Number(s)
CONTRACT_GRANT: NSG-1329
CONTRACT_GRANT: F33615-76-C-2021
Distribution Limits
Public
Copyright
Other

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