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Research on vibration reduction performance of dynamic vibration absorber based on damping characteristic of a new material
Author(s) -
Weizhi Song,
Zhien Liu,
Chihua Lu,
Yongchao Li,
Bin Li
Publication year - 2014
Publication title -
advances in mechanical engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.318
H-Index - 40
eISSN - 1687-8140
pISSN - 1687-8132
DOI - 10.1177/1687814020961596
Subject(s) - dynamic vibration absorber , vibration , reduction (mathematics) , materials science , magnetorheological fluid , vibration control , stiffness , resonance (particle physics) , natural frequency , coupling (piping) , active vibration control , frequency response , excitation , structural engineering , acoustics , composite material , engineering , physics , damper , geometry , mathematics , electrical engineering , particle physics
The absorbing effect of traditional dynamic vibration absorber (TDVA) is satisfactory only when the natural frequency is close to the excitation frequency. For this defect, a semi-active vibration absorber is designed with magnetorheological elastomer (MRE) as a stiffness element, that its stiffness can be controlled by magnetic field, to widen the frequency band of the absorber. Theory and experiments show that reducing the damp of the absorber can improve the performance of the absorber at the anti-resonance point, but it will cause the vibration of the controlled system at the new resonance point, which caused by the addition of a DVA, to be more intense. For this problem, the compatibilizer: silane coupling agent KH570, is added to the preparation of MRE to reduce material damping, at the same time, the stiffness control strategy is used to eliminate the resonance of the controlled system caused by the addition of DVA. The final experimental results show that the frequency band of vibration reduction has been broadened effectively and the vibration reduction performance has been improved considerably. Moreover, the resonance has been eliminated very well.

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