4.6 Article

A time-delayed proportional-derivative controller for a dielectric elastomer circular membrane

期刊

CHINESE JOURNAL OF PHYSICS
卷 84, 期 -, 页码 216-231

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ELSEVIER
DOI: 10.1016/j.cjph.2022.11.004

关键词

Dielectric elastomers; Harmonic balance; Proportional-derivative controller; Time-delay; Stability

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This paper investigates the internal resonance of a circular dielectric elastomer membrane under mechanical and electrical excitations to improve its performance for future applications. A time-delayed proportional-derivative (TDPD) controller is proposed to reduce the oscillations of the DE system and improve stability and transient response. The first-order approximation solutions of the DE system are calculated and the dynamic solution with TDPD controllers is obtained using analytical and numerical approaches.
Due to the substantial deformation generated by voltage excitation, the dielectric elastomer (DE) is a new type of functional polymer that can be employed as a smart actuator. In this paper, an internal resonance of a circular DE membrane is investigated within mechanical and electrical excitations in order to find internal resonances for improving its performance for future applications. All programs that contain DE will perform flawlessly if DE is managed. This work proposes a time-delayed proportional-derivative (TDPD) controller for decreasing the oscillations of a DE system with quadratic and cubic nonlinearities. The system is researched and investigated when using a Proportional-derivative (PD) controller to apply time-delayed control on displacement and velocity. Stability is improved, maximum peak overshoot is reduced, settling time is reduced, and the framework transient response is recovered using this control method. The first-order approximation solutions for the DE system are calculated using the averaging method. Simultaneous resonance is regarded as the worst type of resonance. To obtain the dynamic solution of the device with TDPD controllers, analytical and numerical approaches are used. The Routh-Huriwitz approach is used to review and analyze the consistency of the steady state solution in the near-resonance case. The effects of various factors on the steady-state solution are identified and discussed. The effects of time delay are investigated in order to determine the most stable range of time delays for the best performance. The MATLAB software package is used to generate simulation effects. When the results are compared to the numerical simulations, they show that the approximate solution and the control algorithm used in this paper are well validated. At the end, there is a comparison with previously published work.

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