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Dynamic Mass of a Reaction Wheel Including Gyroscopic Effects: An Experimental Approach
Author(s) -
Daniele Addari,
Guglielmo S. Aglietti,
Marcello Remedia
Publication year - 2016
Publication title -
aiaa journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.828
H-Index - 158
eISSN - 1081-0102
pISSN - 0001-1452
DOI - 10.2514/1.j055398
Subject(s) - reaction wheel , gyroscope , spacecraft , cantilever , noise (video) , range (aeronautics) , computer science , aerospace engineering , vibration , acoustics , simulation , engineering , physics , artificial intelligence , image (mathematics)
In recent years, driven by the increasingly stringent stability requirements imposed by some satellites’ payloads (e.g., the new generation of optical instruments), the issue of accurate onboard spacecraft microvibration modeling has attracted significant interest from engineers and scientists. This paper investigates the microvibration-induced phenomenon on a cantilever-configured reaction wheel assembly including sub- and higher harmonic amplifications due to modal resonances and broadband noise. A mathematical model of the reaction wheel assembly is developed and validated against experimental test results. The model is capable of representing each configuration in which the reaction wheel assembly will operate, whether it is hard mounted on a dynamometric platform or suspended free–free. The outcomes of this analysis are used to establish a novel methodology to retrieve the dynamic mass of the reaction wheel assembly in its operative range of speeds. An alternative measurement procedure has been devel...

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