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On the Scaling Laws for Jet Noise in Subsonic and Supersonic Flow
Author(s) -
Max Kandula,
Bruce T. Vu
Publication year - 2003
Publication title -
nasa sti repository (national aeronautics and space administration)
Language(s) - English
Resource type - Conference proceedings
DOI - 10.2514/6.2003-3288
Subject(s) - jet noise , supersonic speed , jet (fluid) , scaling law , mechanics , choked flow , physics , noise (video) , flow (mathematics) , scaling , acoustics , aerospace engineering , computer science , engineering , mathematics , geometry , artificial intelligence , image (mathematics)
The scaling laws for the simulation of noise from subsonic and ideally expanded supersonic jets are examined with regard to their applicability to deduce full scale conditions from small-scale model testing. Important parameters of scale model testing for the simulation of jet noise are identified, and the methods of estimating full-scale noise levels from simulated scale model data are addressed. The limitations of cold-jet data in estimating high-temperature supersonic jet noise levels are discussed. It is shown that the jet Mach number (jet exit velocity/sound speed at jet exit) is a more general and convenient parameter for noise scaling purposes than the ratio of jet exit velocity to ambient speed of sound. A similarity spectrum is also proposed, which accounts for jet Mach number, angle to the jet axis, and jet density ratio. The proposed spectrum reduces nearly to the well-known similarity spectra proposed by Tam for the large-scale and the fine-scale turbulence noise in the appropriate limit.

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