Suppression of Jet Noise for a Plug Nozzle Using Porosity on the Plug Surface
Aerospace
Suppression of Jet Noise for a Plug Nozzle Using Porosity on the Plug Surface (LEW-TOPS-200)
Elimination of Aberrant Noise Components During Supersonic Landing and Takeoff
Overview
Future commercial supersonic aircraft need propulsion systems with significantly lower landing and takeoff (LTO) noise to meet strict environmental regulations. While plug nozzles offer excellent aerodynamic efficiency, conventional solid plug designs generate severe aberrant noise at off-design pressure ratios. This includes broadband shock associated noise (BBSN), excess broadband noise (EBBN), screech, and transonic tones. Suppressing these complex noise components without sacrificing engine thrust remains a critical challenge for aerospace manufacturers.
In response, engineers at NASA's Glenn Research Center developed a porous center-body structure that minimizes acoustic emissions in plug nozzles. The invention is an advanced exhaust geometry that leverages surface porosity to stabilize flow dynamics. By altering the plug's physical structure, the technology eliminates aberrant noise. This allows engineers to avoid unexpected noise generation during critical LTO phases with minimal thrust loss, offering a highly efficient acoustic solution for supersonic aviation.
The Technology
The plug architecture replaces traditional solid exhaust plugs with an elongated design characterized by a hollow interior and a uniformly porous surface. By positioning the plug's crown inside the nozzle, the exhaust travels through a convergent passage up to the crown and a divergent passage past it. In standard solid plugs, shock waves become unsteady at off-design pressure ratios, causing severe acoustic resonance. The porous skin stabilizes localized flow separation and disrupts unsteady shock formation. By doing so, the technology alters complex aerodynamic interactions providing the noise reduction. Translation of the plug provides variable design condition without requiring heavy, maintenance-intensive mechanisms.
Sub-scale acoustic testing demonstrates superior noise suppression without sacrificing aerodynamic efficiency. While existing aerodynamic treatments (such as tabs or boundary layer tripping) only mitigate screech or transonic tones, the porous plug represents a breakthrough by eliminating BBSN and EBBN as well as other aberrant noise. Additionally, thrust measurement data indicates this dramatic noise reduction is achieved with minimal impact on the gross thrust coefficient, preserving engine performance within
Benefits
- Aberrant Noise Elimination: Nearly eliminates BBSN, EBBN, screech, and transonic tones at off-design pressure ratios, providing far superior acoustic improvement over existing plug architectures.
- Maintained Thrust: Incurs minimal impact on the gross thrust coefficient, preserving the vital engine aerodynamic performance and cruise efficiency required for optimal operation.
- Compatibility with Existing Nozzles: Features similar external geometry as conventional solid plugs, allowing for straightforward integration into existing nozzle architectures without requiring extensive redesign.
- Fixed Geometry: Provides a low-part-count acoustic solution that avoids the high mass, maintenance, and complexity of moving variable-geometry nozzle technologies, ultimately optimizing vehicle weight.
Applications
- Commercial Supersonic Aviation: Enhances exhaust systems and low-bypass-ratio engines for next generation transport aircraft requiring significant reduction in LTO noise without sacrificing thrust performance.
- Military Aerospace: Propulsion systems for high-speed military aircraft necessitating the suppression of jet noise to improve operational acoustics and mitigate sonic fatigue.
- Inlets and Ducts: Aerospace air intakes and internal ducting systems requiring the mitigation of excessive flow noise originating from internal center-bodies or plugs.
Technology Details
Aerospace
LEW-TOPS-200
LEW-20661-1
Patent Pending
An Investigation of A Plug-Nozzle for Supersonic Aircraft Concepts. Khairul BMQ Zaman, John H Korth, Amy F Fagan, & James E Bridges;
Study of a Plug Nozzle for Supersonic Aircraft Concepts. Khairul BMQ Zaman, John H Korth, Amy F Fagan, & James E Bridges;
Flow and Noise from Supersonic Plug Nozzles. Khairul BMQ Zaman, Amy Fagan, James Bridges, & Brian Heberling.
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