Abstract
This paper presents an investigation into the deployment of genetic algorithm (GA)-based controller design and optimization for vibration suppression in flexible structures. The potential of GA is explored in three case studies. In the first case study, the potential of GA is demonstrated in the development and optimization of a hybrid learning control scheme for vibration control of flexible manipulators. In the second case study, an active control mechanism for vibration suppression of flexible beam structures using GA optimization technique is proposed. The third case study presents the development of an effective adaptive command shaping control scheme for vibration control of a twin rotor system, where GA is employed to optimize the amplitudes and time locations of the impulses in the proposed control algorithm. The effectiveness of the proposed control schemes is verified in both an experimental and a simulation environment, and their performances are assessed in both the time and frequency domains.
Original language | English |
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Pages (from-to) | 133-168 |
Number of pages | 36 |
Journal | Journal of Intelligent Systems |
DOIs | |
Publication status | Published - 1 Dec 2008 |
Keywords
- Flexible systems
- Hybrid learning control
- Command shaping
- Genetic algorithm
- Optimization
- Active vibration control