학술논문

Hybrid Time-Delayed Feedforward and Feedback Control of Lever-Type Quasi-Zero-Stiffness Vibration Isolators
Document Type
Periodical
Source
IEEE Transactions on Industrial Electronics IEEE Trans. Ind. Electron. Industrial Electronics, IEEE Transactions on. 71(3):2810-2819 Mar, 2024
Subject
Power, Energy and Industry Applications
Signal Processing and Analysis
Communication, Networking and Broadcast Technologies
Vibrations
Isolators
Feedback control
Feedforward systems
Delay effects
Damping
Stability criteria
Hybrid active control
lever
nonlinear vibration
quasi-zero-stiffness (QZS)
time delay
Language
ISSN
0278-0046
1557-9948
Abstract
Quasi-zero-stiffness (QZS) vibration isolators can achieve a considerable vibration isolation performance in the low-frequency range. However, the vibration isolation performance and stability would become worse under complex excitation environments, such as large strokes, uncertain excitation amplitudes, etc. This work proposes a hybrid time-delayed feedforward and feedback controller (HTD-FFC) to improve the broadband vibration isolation performance and stability of lever-type QZS (L-QZS) vibration isolators. The nonlinear governing equation of L-QZS vibration isolators with HTD-FFC is established and the corresponding frequency response relationship is derived by applying the harmonic balance method. The stability criterion is established. The effects of the time delay and gains of the time-delayed feedback controller (TD-FBC) and HTD-FFC are numerically and experimentally analyzed. Compared to the TD-FBC, the HTD-FFC with different time delays can efficiently suppress and even eliminate the peak transmissibility without seriously affecting the performance in the isolation region. The HTD-FFC not only improves the vibration isolation performance but also eliminates the unstable and chaotic behaviors to strengthen the robustness and stability of L-QZS vibration isolators. This article provides a time-delayed hybrid control approach to improve the vibration performance and stability of QZS vibration isolators.