Abstract
In this study, a new method for the optimal design of multimode shunt-damping circuits is presented. A modification of the “current-flowing” shunt circuit is employed to control multiple vibration modes of a piezoelectric laminate beam. In addition to the resistor damping components, the method considers the capacitances and the shunting branch inductors as new design variables. The H∞ norm of the damped system is minimized using the particle swarm optimization (PSO) method in the suggested optimization strategy. Two additional numerical models are addressed in order to compare the proposed method with other methods from the literature and to thoroughly examine the effect of the design variables on damping performance. To simulate the dynamic behavior of the piezoelectric composite beam, a finite-element model is created which provides more accurate modeling of thick beam structures. Results show that the suggested method may improve damping efficiency when compared to other models, since it generates a highest peak amplitude reduction of 39.61 dB for the second mode and 55.92 dB for the third mode. Finally, another benefit provided by the suggested optimal design is the reduction of the required shunt inductance values.
Reference32 articles.
1. Yan, B., Wang, K., Hu, Z., Wu, C., and Zhang, X. (2017). Shunt Damping Vibration Control Technology: A Review. Appl. Sci., 7.
2. Shunt Piezoelectric Systems for Noise and Vibration Control: A Review;Front. Built Environ.,2019
3. Electronic Damping of Vibrations in Optical Structures;Appl. Opt.,1979
4. Damping of Structural Vibrations with Piezoelectric Materials and Passive Electrical Networks;J. Sound Vib.,1991
5. Dynamics Modelling of Beams with Shunted Piezoelectric Elements;J. Sound Vib.,2003
Cited by
6 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献