Low, Drag, Variable-Depth Acoustic Liner
INSTITUTION
NASA Langley Research Center
PRINCIPAL INVESTIGATOR
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Abstract
The drag penalty incurred by a conventional acoustic liner is dependent, to a large extent, on the perforate open area ratio (porosity) of the perforated facesheet. As the open area ratio is decreased, the facesheet behaves more like a solid surface and the drag is reduced. However, if the open area ratio is too small, the external acoustic field will be isolated from the resonators (in the liner), and the system will not provide noise reduction. The technology is a new type of variable-depth acoustic engine liner, which will reduce the drag and potentially manufacturing cost of this class of engine liner. Individual resonators within a conventional variable-depth liner are effective near resonance, but provide less acoustic benefit at other frequencies. In fact, at anti-resonance, a resonator behaves similar to a hard wall (i.e., the normal component of the particle velocity at the inlet is zero). Therefore, the proposed innovation couples neighboring resonators (tuned for different frequencies) together within the core of the liner. In other words, multiple resonators share a single inlet/port. Sharing inlets reduces the overall number of openings needed to maintain the acoustic performance of the liner by a factor of two or more. Reducing the open area ratio will in turn reduce the liner drag, and will reduce the number of holes that have to be machined into the facesheet, potentially reducing manufacturing cost. The functional operation of the proposed innovation will be identical to conventional engine liners. The innovation enables a reduction of the open area ratio of the perforated facesheet (by a factor of two or more) without degrading the acoustic performance. This will decrease the liner drag, and has the potential to reduce the manufacturing cost of the liner, since fewer holes need to be machined in the facesheet. A low-drag, variable-depth acoustic liner has been designed for aircraft noise reduction. The technology can be used as a conventional engine nacelle liner, or on the external surfaces of an aircraft to reduce acoustic scattering. As compared with conventional liners, the technology provides increased broadband acoustic performance with less drag. Conventional liners use a perforated facesheet as the outermost portion of the liner exposed to flow. The perforated facesheet has a higher drag than a smooth surface, but is necessary to reduce noise. The proposed innovation reduces the open area of the facesheet, and therefore reducing the drag of the liner, without compromising acoustic performance.
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