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Open AccessJournal ArticleDOI

Positive Position Feedback Control for High-Amplitude Vibration of a Flexible Beam to a Principal Resonance Excitation

Li Jun
- 01 Jan 2010 - 
- Vol. 17, Iss: 2, pp 187-203
TLDR
In this paper, an active linear absorber based on positive position feedback control strategy to suppress the high-amplitude response of a flexible beam subjected to a primary external excitation is developed and investigated.
Abstract
The application of active linear absorber based on positive position feedback control strategy to suppress the high-amplitude response of a flexible beam subjected to a primary external excitation is developed and investigated. A mathematical nonlinear model that describes the single-mode dynamic behavior of the beam is considered. The perturbation method of multiple scales is employed to find the general nonlinear response of the system and four first-order differential equations governing the amplitudes and phases of the responses are derived. Then a stability analysis is conducted for the open- and closed-loop responses of the system and the performance of the control strategy is analyzed. A parametric investigation is carried out to investigate the effects of changing the damping ratio of the absorber and the value of the feedback gain as well as the effect of detuning the frequency of the absorber on the responses of the system. It is demonstrated that the positive position feedback control technique is effective in reducing the high-amplitude vibration of the model and the control scheme possesses a wide suppression bandwidth if the absorber's frequency is properly tuned. Finally, the numerical simulations are performed to validate the perturbation solutions.

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Journal ArticleDOI

Sensitivity analysis of the Nonlinear Integral Positive Position Feedback and Integral Resonant controllers on vibration suppression of nonlinear oscillatory systems

TL;DR: The new Nonlinear Integral Positive Position Feedback approach and the Integral Resonant Control method are implemented and analyzed for nonlinear vibration control and it is demonstrated that controller structure has the most salient role in the suppression performance.
Journal ArticleDOI

Nonlinear vibration suppression of flexible structures using nonlinear modified positive position feedback approach

TL;DR: In this paper, a nonlinear modified positive position feedback (NMPPF) control approach for nonlinear vibration suppression at primary resonance is proposed, which consists of a resonant second-order nonlinear compensator, which is enhanced by a lossy integrating compensator.
Journal ArticleDOI

Dynamic analysis and control application of vibration isolation system with magnetic suspension on satellites

TL;DR: A new kind of vibration isolation platform whose actuators are based on the magnetic suspension techniques is presented, and the stability and the parameters sensitivity of the platform are analyzed.
Journal ArticleDOI

Effects of time delay on an active vibration control of a forced and Self-excited nonlinear beam

TL;DR: In this paper, a positive position feedback controller is used to control the vibrations of forced and self-excited nonlinear beam, and the effects of time delay on the system are extensively studied, and optimal conditions for the system operation are deduced.
Journal ArticleDOI

Positive Position Feedback Control of a Galloping Structure

TL;DR: In this article, the suppression of wind-induced oscillations of a D-shaped prism mounted on a cantilever beam by means of a positive position feedback (PPF) controller is investigated.
References
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Book

Dynamics and control of structures

TL;DR: This paper presents a meta-review of the literature on Structural Control of Lumped--Parameter Systems and its applications in Newtonian Mechanics and Distributed--Parameter Structures.
Journal ArticleDOI

Positive position feedback control for large space structures

TL;DR: In this paper, a new technique for vibration suppression in large space structures is investigated in laboratory experiments on a thin cantilever beam, which makes use of generalized displacement measurements to accomplish vibration suppression.
Journal ArticleDOI

On the stability problem caused by finite actuator dynamics in the collocated control of large space structures

TL;DR: In this paper, the nature of these stability problems is investigated, and a technique using position feedback is considered to solve the problem of low-frequency modes not destabilizing intermediate and higher-order modes.
Journal ArticleDOI

A comparison of control techniques for large flexible systems

TL;DR: The comparison shows the independent modal-space control method to possess many advantages over coupled control, as it permits easier design and implementation and requires less computational effort and control energy for implementation.
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