Sound Absorption of a 2Dof Resonant Liner With Negative Bias Flow

Sound Absorption of a 2Dof Resonant Liner With Negative Bias Flow

Paperback (16 Sep 2018)

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Publisher's Synopsis

This report describes an experimental study conducted to determine the effect of negative bias flow on the sound absorption of a two degree-of-freedom liner. The backwall for the liner was designed to act as a double-Helmholtz resonator so as to act as a hard wall at all frequencies except at its resonant frequencies. All normal incident impedance data presented herein was acquired in an impedance tube. The effect of bias flow is investigated for a buried septum porosity of 2% and 19.5% for bias flow orifice mach numbers up to 03 11. As a porous backwall is needed for the flow to pass through, the effect of bias flow on this backwall all had to be evaluated first. The bias flow appears to modify the resistance and reactance of the backwall alone at lower frequencies up to about 2 kHz, with marginal effects at higher frequencies. Absorption coefficients close to unity are achieved for a frequency range of 500-4000 Hz for the overall liner for a septum porosity of 2% and orifice mach number of 0.128. Insertion loss tests performed in a flow duct facility for grazing flow Mach numbers up to 0.2 and septum mach numbers up to 0.15 showed that negative bias flow can increase insertion loss by as much as 10 dB at frequencies in the range of 500 - 1400 Hz compared to no grazing flow. The effectiveness of the negative bias flow is diminished as the grazing flow velocity is increased.Ahuja, K. K. and Cataldi, P. and Gaeta, R. J., Jr. and Jones, Mike (Technical Monitor)Langley Research CenterDEGREES OF FREEDOM; LININGS; SOUND TRANSMISSION; RESPONSE BIAS; FLOW CHARACTERISTICS; MACH NUMBER; FLOW VELOCITY; FREQUENCY RANGES; RESONANT FREQUENCIES...

Book information

ISBN: 9781723756894
Publisher: Independently Published
Imprint: Independently Published
Pub date:
Language: English
Number of pages: 36
Weight: 109g
Height: 280mm
Width: 216mm
Spine width: 2mm