Dynamics of a Nonlinear Energy Harvesting System in Time-Delayed Feedback Control under Stochastic Excitations

A time-delayed feedback control is applied to a nonlinear piezoelectric energy harvesting system excited by additive and multiplicative Gaussian white noises to improve its energy harvesting performance. An equivalent decoupling system can be obtained by using a variable transformation. Based on the...

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Main Authors: Shuling Zhang, Ying Zhang, Zhongkui Sun, Xiaxia Duan
Format: Article
Language:English
Published: Hindawi-Wiley 2020-01-01
Series:Complexity
Online Access:http://dx.doi.org/10.1155/2020/8460350
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spelling doaj-ca1caba25ec0408880d2249c347d49842020-11-25T02:36:36ZengHindawi-WileyComplexity1076-27871099-05262020-01-01202010.1155/2020/84603508460350Dynamics of a Nonlinear Energy Harvesting System in Time-Delayed Feedback Control under Stochastic ExcitationsShuling Zhang0Ying Zhang1Zhongkui Sun2Xiaxia Duan3Department of Applied Mathematics, Northwestern Polytechnical University, Xi’an 710072, Shaanxi, ChinaDepartment of Applied Mathematics, Northwestern Polytechnical University, Xi’an 710072, Shaanxi, ChinaDepartment of Applied Mathematics, Northwestern Polytechnical University, Xi’an 710072, Shaanxi, ChinaDepartment of Applied Mathematics, Northwestern Polytechnical University, Xi’an 710072, Shaanxi, ChinaA time-delayed feedback control is applied to a nonlinear piezoelectric energy harvesting system excited by additive and multiplicative Gaussian white noises to improve its energy harvesting performance. An equivalent decoupling system can be obtained by using a variable transformation. Based on the standard stochastic averaging method, the Fokker–Plank–Kolmogorov equation and the stationary probability density functions of the amplitude, displacement, and velocity of the harvester are obtained, respectively. In addition, the approximate expressions of mean square electric voltage and the mean extracted output power are derived. Finally, the paper explores the influences of parameters on the mean square electric voltage. The results show that noise intensity, time delay, feedback strength, time constant ratio, and coupling coefficients have great influences on the mean square electric voltage. The accuracy of the theoretical method is verified by the Monte Carlo simulation.http://dx.doi.org/10.1155/2020/8460350
collection DOAJ
language English
format Article
sources DOAJ
author Shuling Zhang
Ying Zhang
Zhongkui Sun
Xiaxia Duan
spellingShingle Shuling Zhang
Ying Zhang
Zhongkui Sun
Xiaxia Duan
Dynamics of a Nonlinear Energy Harvesting System in Time-Delayed Feedback Control under Stochastic Excitations
Complexity
author_facet Shuling Zhang
Ying Zhang
Zhongkui Sun
Xiaxia Duan
author_sort Shuling Zhang
title Dynamics of a Nonlinear Energy Harvesting System in Time-Delayed Feedback Control under Stochastic Excitations
title_short Dynamics of a Nonlinear Energy Harvesting System in Time-Delayed Feedback Control under Stochastic Excitations
title_full Dynamics of a Nonlinear Energy Harvesting System in Time-Delayed Feedback Control under Stochastic Excitations
title_fullStr Dynamics of a Nonlinear Energy Harvesting System in Time-Delayed Feedback Control under Stochastic Excitations
title_full_unstemmed Dynamics of a Nonlinear Energy Harvesting System in Time-Delayed Feedback Control under Stochastic Excitations
title_sort dynamics of a nonlinear energy harvesting system in time-delayed feedback control under stochastic excitations
publisher Hindawi-Wiley
series Complexity
issn 1076-2787
1099-0526
publishDate 2020-01-01
description A time-delayed feedback control is applied to a nonlinear piezoelectric energy harvesting system excited by additive and multiplicative Gaussian white noises to improve its energy harvesting performance. An equivalent decoupling system can be obtained by using a variable transformation. Based on the standard stochastic averaging method, the Fokker–Plank–Kolmogorov equation and the stationary probability density functions of the amplitude, displacement, and velocity of the harvester are obtained, respectively. In addition, the approximate expressions of mean square electric voltage and the mean extracted output power are derived. Finally, the paper explores the influences of parameters on the mean square electric voltage. The results show that noise intensity, time delay, feedback strength, time constant ratio, and coupling coefficients have great influences on the mean square electric voltage. The accuracy of the theoretical method is verified by the Monte Carlo simulation.
url http://dx.doi.org/10.1155/2020/8460350
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AT yingzhang dynamicsofanonlinearenergyharvestingsystemintimedelayedfeedbackcontrolunderstochasticexcitations
AT zhongkuisun dynamicsofanonlinearenergyharvestingsystemintimedelayedfeedbackcontrolunderstochasticexcitations
AT xiaxiaduan dynamicsofanonlinearenergyharvestingsystemintimedelayedfeedbackcontrolunderstochasticexcitations
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