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Optimizing tuning masses for helicopter rotor blade vibration reduction including computed airloads and comparison with test data
Author(s) -
Jocelyn I. Pritchard,
H. M. Adelman,
Joanne L. Walsh,
Matthew L. Wilbur
Publication year - 1992
Publication title -
33rd structures, structural dynamics and materials conference
Language(s) - English
Resource type - Conference proceedings
DOI - 10.2514/6.1992-2376
Subject(s) - blade (archaeology) , reduction (mathematics) , vibration , helicopter rotor , rotor (electric) , structural engineering , computer science , test data , test (biology) , engineering , acoustics , physics , mechanical engineering , geology , mathematics , paleontology , geometry , programming language
The development and validation of an optimization procedure to systematically place tuning masses along a rotor blade span to minimize vibratory loads are described. The masses and their corresponding locations are the design variables that are manipulated to reduce the harmonics of hub shear for a four-bladed rotor system without adding a large mass penalty. The procedure incorporates a comprehensive helicopter analysis to calculate the airloads. Predicting changes in airloads due to changes in design variables is an important feature of this research. The procedure was applied to a one-sixth, Mach-scaled rotor blade model to place three masses and then again to place six masses. In both cases the added mass was able to achieve significant reductions in the hub shear. In addition, the procedure was applied to place a single mass of fixed value on a blade model to reduce the hub shear for three flight conditions. The analytical results were compared to experimental data from a wind tunnel test performed in the Langley Transonic Dynamics Tunnel. The correlation of the mass location was good and the trend of the mass location with respect to flight speed was predicted fairly well. However, it was noted that the analysis was not entirely successful at predicting the absolute magnitudes of the fixed system loads.

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