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Active control of wake/blade-row interaction noise through the use of blade surface actuatorsA combined analytical/computational approach for controlling of the noise generated by wake/blade-row interaction through the use of anti-sound actuators on the blade surfaces is described. A representative two-dimensional section of a fan stage, composed of an upstream fan rotor and a downstream fan exit guide vane (FEGV), is examined. An existing model for the wakes generated by the rotor is analyzed to provide realistic magnitudes for the vortical excitations imposed at the inlet to the FEGV. The acoustic response of the FEGV is determined at multiples of the blade passing frequency (BPF) by using the linearized unsteady flow analysis, LINFLO. Acoustic field contours are presented at each multiple of BPF illustrating the generated acoustic response disturbances. Anti-sound is then provided by placing oscillating control surfaces, whose lengths and locations are specified arbitrarily, on the blades. An analysis is then conducted to determine the complex amplitudes required for the control surface motions to best reduce the noise. It is demonstrated that if the number of acoustic response modes to be controlled is equal to the number of available independent control surfaces, complete noise cancellation can be achieved. A weighted least squares minimization procedure for the control equations is given for cases in which the number of acoustic modes exceeds the number of available control surfaces. The effectiveness of the control is measured by the magnitude of a propagating acoustic response vector, which is related to the circumferentially averaged sound pressure level (SPL), and is minimized by a standard least-squares minimization procedure.
Document ID
19940017135
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Kousen, Kenneth A.
(United Technologies Research Center East Hartford, CT, United States)
Verdon, Joseph M.
(United Technologies Research Center East Hartford, CT, United States)
Date Acquired
September 6, 2013
Publication Date
December 1, 1993
Publication Information
Publisher: NASA
Subject Category
Acoustics
Report/Patent Number
E-8227
NASA-CR-4556
NAS 1.26:4556
Report Number: E-8227
Report Number: NASA-CR-4556
Report Number: NAS 1.26:4556
Accession Number
94N21608
Funding Number(s)
CONTRACT_GRANT: NAS3-25425
PROJECT: RTOP 535-03-10
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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