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Experimental localization of an acoustic sound source in a wind-tunnel flow by using a numerical time-reversal technique
48
Citations
27
References
2012
Year
AeroacousticsExperimental LocalizationEngineeringAtmospheric AcousticOcean AcousticsSound SourceSpeaker LocalizationNoiseAcoustical EngineeringSound PropagationAcoustic AnalysisOutdoor Sound PropagationLinear ArrayWind-tunnel FlowAcoustic Sound SourceOcean EngineeringAerospace EngineeringAerodynamicsSpeech ProcessingNumerical Time-reversal Technique
The possibility of using the time-reversal technique to localize acoustic sources in a wind-tunnel flow is investigated. While the technique is widespread, it has scarcely been used in aeroacoustics up to now. The proposed method consists of two steps: in a first experimental step, the acoustic pressure fluctuations are recorded over a linear array of microphones; in a second numerical step, the experimental data are time-reversed and used as input data for a numerical code solving the linearized Euler equations. The simulation achieves the back-propagation of the waves from the array to the source and takes into account the effect of the mean flow on sound propagation. The ability of the method to localize a sound source in a typical wind-tunnel flow is first demonstrated using simulated data. A generic experiment is then set up in an anechoic wind tunnel to validate the proposed method with a flow at Mach number 0.11. Monopolar sources are first considered that are either monochromatic or have a narrow or wide-band frequency content. The source position estimation is well-achieved with an error inferior to the wavelength. An application to a dipolar sound source shows that this type of source is also very satisfactorily characterized.
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