Noise Characterization of a Full-Scale Nose Landing Gear
Author(s) -
Gareth J. Bennett,
Eleonora Neri,
John F. Kennedy
Publication year - 2018
Publication title -
journal of aircraft
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.64
H-Index - 94
eISSN - 1533-3868
pISSN - 0021-8669
DOI - 10.2514/1.c034750
Subject(s) - landing gear , doors , noise (video) , aerodynamics , acoustics , wind tunnel , marine engineering , full scale , noise control , range (aeronautics) , engineering , crosswind , structural engineering , aerospace engineering , computer science , noise reduction , physics , artificial intelligence , image (mathematics)
This paper presents experimental results from a nose landing-gear test campaign. A highly detailed model of the nose section of a 90-seat configuration green regional aircraft concept was built and tested in an aeroacoustic open-jet wind tunnel at full scale. All of the landing-gear components, fixtures, and small details and associated structures such as the complete wheel bay, bay doors, and hydraulic dressings were included at full scale. This paper focuses on one element of the testing: that of component noise assessment. The dressings, wheels, torque link, steering pinion, bay doors, and then the main strut and drag stay were removed in succession, and an acoustic evaluation was performed at a range of velocities from M=0.12 to M=0.19. In addition, hub caps were installed on the wheels, and their performance as a low-noise treatment is presented and assessed for efficacy. The landing gear, doors, and bay generated most noise in the frequency range between 120 and 400 Hz, but appreciable noise above t...
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