TY - JOUR
T1 - Response analysis and energy transmissibility of a vibration isolation system with real-power nonlinearities under a NMPPF controller
AU - Huang, Dongmei
AU - Xu, Wei
AU - Shi, Lingling
N1 - Publisher Copyright:
© 2016 Elsevier Ltd. All rights reserved.
PY - 2016/6
Y1 - 2016/6
N2 - In this paper, the nonlinear modified positive position feedback (NMPPF) scheme and the real-power form of restoring and damping forces are combined to improve the response performance of a vibration isolation system. Based on the method of multiple scales, the frequency response, the stability and the energy transmissibility of the real-power vibration isolation system are studied. It is found that the controlled isolation system exhibits a softening behavior for sub-linear restoring force, while it exhibits the two peak response characteristic rather than a hardening behavior for over-linear restoring force. Further, the sensitivity of the feedback parameters on the responses is discussed. The results, compared to the conventional PPF and IRC methods, show that the proposed method is significantly more effective in controlling the steady-state response, and slightly advantageous for the steady-state dynamics control. The effectiveness of this method is also verified by time domain analysis. Then, the suitable feedback and controller parameters are derived by simulation results in which the amplitude peak is suppressed and the resonance stability is maintained. Finally, the energy transmissibility of the vibration isolation system is investigated. The results show that the feedback gain can reduce the whole transmissibility level and greatly suppress vibration in the resonance region, and the existence of the nonlinear real-power stiffness term leads to the critical value for the appearance of the negative value become larger.
AB - In this paper, the nonlinear modified positive position feedback (NMPPF) scheme and the real-power form of restoring and damping forces are combined to improve the response performance of a vibration isolation system. Based on the method of multiple scales, the frequency response, the stability and the energy transmissibility of the real-power vibration isolation system are studied. It is found that the controlled isolation system exhibits a softening behavior for sub-linear restoring force, while it exhibits the two peak response characteristic rather than a hardening behavior for over-linear restoring force. Further, the sensitivity of the feedback parameters on the responses is discussed. The results, compared to the conventional PPF and IRC methods, show that the proposed method is significantly more effective in controlling the steady-state response, and slightly advantageous for the steady-state dynamics control. The effectiveness of this method is also verified by time domain analysis. Then, the suitable feedback and controller parameters are derived by simulation results in which the amplitude peak is suppressed and the resonance stability is maintained. Finally, the energy transmissibility of the vibration isolation system is investigated. The results show that the feedback gain can reduce the whole transmissibility level and greatly suppress vibration in the resonance region, and the existence of the nonlinear real-power stiffness term leads to the critical value for the appearance of the negative value become larger.
KW - Energy transmissibility
KW - Nonlinear modified positive position feedback
KW - Real-power restoring force
KW - Vibration isolation system
UR - http://www.scopus.com/inward/record.url?scp=84964814538&partnerID=8YFLogxK
U2 - 10.1016/j.chaos.2016.04.016
DO - 10.1016/j.chaos.2016.04.016
M3 - 文章
AN - SCOPUS:84964814538
SN - 0960-0779
VL - 87
SP - 281
EP - 292
JO - Chaos, Solitons and Fractals
JF - Chaos, Solitons and Fractals
ER -