Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
6955396 | Mechanical Systems and Signal Processing | 2016 | 17 Pages |
Abstract
Failure of structural systems under dynamic loading can be prevented via active vibration control which shifts the damped natural frequencies of the systems away from the dominant range of a loading spectrum. The damped natural frequencies and the dynamic load typically show significant variations in practice. A computationally efficient methodology based on quadratic partial eigenvalue assignment technique and optimization under uncertainty has been formulated in the present work that will rigorously account for these variations and result in economic and resilient design of structures. A novel scheme based on hierarchical clustering and importance sampling is also developed in this work for accurate and efficient estimation of probability of failure to guarantee the desired resilience level of the designed system. Finally the most robust set of feedback matrices is selected from the set of probabilistically characterized optimal closed-loop system to implement the new methodology for design of active controlled structures. Numerical examples are presented to illustrate the proposed methodology.
Keywords
Related Topics
Physical Sciences and Engineering
Computer Science
Signal Processing
Authors
S. Das, K. Goswami, B.N. Datta,