Design and Analysis of Switching Circuits for Energy Harvesting in Piezostrutures

This study deals with a general method for the analysis of a semi-active control technique for a fast-shunt switching system. The benefit of the semi-active system is the reduction in power consumption, which is a significant disadvantage of a fully active system compared with a passive system. A s...

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Main Author: Kim, Woon Kyung
Other Authors: Mechanical Engineering
Format: Others
Published: Virginia Tech 2014
Subjects:
Online Access:http://hdl.handle.net/10919/28646
http://scholar.lib.vt.edu/theses/available/etd-08132012-110953/
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-286462020-09-26T05:34:00Z Design and Analysis of Switching Circuits for Energy Harvesting in Piezostrutures Kim, Woon Kyung Mechanical Engineering Kurdila, Andrew J. Inman, Daniel J. Priya, Shashank Burns, John A. Erturk, Alper PWM signal averaging method switching circuit systems energy harvesting piezoelectric material hybrid continuous-discrete system This study deals with a general method for the analysis of a semi-active control technique for a fast-shunt switching system. The benefit of the semi-active system is the reduction in power consumption, which is a significant disadvantage of a fully active system compared with a passive system. A semi-active system under consideration is a semi-actively shunted piezoelectric system, which converts the strain energy into electrical energy through strong electromechanical coupling achieved though the piezoelectric phenomenon. Our proposed semi-active approach combines a PZT-based energy harvesting with a fast switching system driven by a Pulse-Width Modulated (PWM) signal. The fast switching system enables continuous adaptation of vibration energy control/harvesting by varying the PWM duty cycle. This contrasts with a conventional capacitance switching system that can only change the capacitance at discrete values. The analysis of the current piezoelectric system combined with a fast-switching system poses a considerable challenge as it contains both continuous and discrete characteristics. The study proposes an enhanced averaging method for analyzing the piecewise linear system. The simulation of the averaged system is much faster than that of the time-varying system. Moreover, the analysis derives error bounds that characterize convergence in the time domain of the averaged system to the original system. The dissertation begins with the derivation of the equations governing the physics of a piezostructure combined with an electrical switching shunt network. The results of the averaging analysis and numerical simulation are presented in order to provide a basis for estimating the structural responses that range between open- and short-circuit conditions which constitutes two limiting conditions. An experimental study demonstrates that the capacitive shunt bimorph piezostructure coupled with a single switch can be adjusted continuously by varying the PWM duty cycle. And the behavior of such hybrid system can be well predicted by the averaging analysis. Ph. D. 2014-03-14T20:15:11Z 2014-03-14T20:15:11Z 2012-08-06 2012-08-13 2012-08-21 2012-08-21 Dissertation etd-08132012-110953 http://hdl.handle.net/10919/28646 http://scholar.lib.vt.edu/theses/available/etd-08132012-110953/ Kim_WK_D_2012.pdf fig1p1a_fairuse_results.pdf fig1p1b_fairuse_results.pdf In Copyright http://rightsstatements.org/vocab/InC/1.0/ application/pdf application/pdf application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic PWM signal
averaging method
switching circuit systems
energy harvesting
piezoelectric material
hybrid continuous-discrete system
spellingShingle PWM signal
averaging method
switching circuit systems
energy harvesting
piezoelectric material
hybrid continuous-discrete system
Kim, Woon Kyung
Design and Analysis of Switching Circuits for Energy Harvesting in Piezostrutures
description This study deals with a general method for the analysis of a semi-active control technique for a fast-shunt switching system. The benefit of the semi-active system is the reduction in power consumption, which is a significant disadvantage of a fully active system compared with a passive system. A semi-active system under consideration is a semi-actively shunted piezoelectric system, which converts the strain energy into electrical energy through strong electromechanical coupling achieved though the piezoelectric phenomenon. Our proposed semi-active approach combines a PZT-based energy harvesting with a fast switching system driven by a Pulse-Width Modulated (PWM) signal. The fast switching system enables continuous adaptation of vibration energy control/harvesting by varying the PWM duty cycle. This contrasts with a conventional capacitance switching system that can only change the capacitance at discrete values. The analysis of the current piezoelectric system combined with a fast-switching system poses a considerable challenge as it contains both continuous and discrete characteristics. The study proposes an enhanced averaging method for analyzing the piecewise linear system. The simulation of the averaged system is much faster than that of the time-varying system. Moreover, the analysis derives error bounds that characterize convergence in the time domain of the averaged system to the original system. The dissertation begins with the derivation of the equations governing the physics of a piezostructure combined with an electrical switching shunt network. The results of the averaging analysis and numerical simulation are presented in order to provide a basis for estimating the structural responses that range between open- and short-circuit conditions which constitutes two limiting conditions. An experimental study demonstrates that the capacitive shunt bimorph piezostructure coupled with a single switch can be adjusted continuously by varying the PWM duty cycle. And the behavior of such hybrid system can be well predicted by the averaging analysis. === Ph. D.
author2 Mechanical Engineering
author_facet Mechanical Engineering
Kim, Woon Kyung
author Kim, Woon Kyung
author_sort Kim, Woon Kyung
title Design and Analysis of Switching Circuits for Energy Harvesting in Piezostrutures
title_short Design and Analysis of Switching Circuits for Energy Harvesting in Piezostrutures
title_full Design and Analysis of Switching Circuits for Energy Harvesting in Piezostrutures
title_fullStr Design and Analysis of Switching Circuits for Energy Harvesting in Piezostrutures
title_full_unstemmed Design and Analysis of Switching Circuits for Energy Harvesting in Piezostrutures
title_sort design and analysis of switching circuits for energy harvesting in piezostrutures
publisher Virginia Tech
publishDate 2014
url http://hdl.handle.net/10919/28646
http://scholar.lib.vt.edu/theses/available/etd-08132012-110953/
work_keys_str_mv AT kimwoonkyung designandanalysisofswitchingcircuitsforenergyharvestinginpiezostrutures
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