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dc.identifier.urihttp://hdl.handle.net/11401/76462
dc.description.sponsorshipThis work is sponsored by the Stony Brook University Graduate School in compliance with the requirements for completion of degree.en_US
dc.formatMonograph
dc.format.mediumElectronic Resourceen_US
dc.language.isoen_US
dc.publisherThe Graduate School, Stony Brook University: Stony Brook, NY.
dc.typeDissertation
dcterms.abstractSmart structure, which is defined as “a system or material which has built-in or intrinsic sensors, actuators and control mechanisms is capable of responding adaptively to the environment†, has attracted more and more interest in recent decades, especially in the applications of aerospace, civil, and mechanical infrastructures. Piezoelectric, with its special electromechanical characteristics, is widely used in the smart structure design. Piezoelectric-based multifunctional smart structures for integrated vibration energy harvesting, structure health monitoring, and vibration control are studied in this dissertation. In the aspect of energy harvesting, a novel piezoelectric energy harvester with multi-mode dynamic magnifier is proposed and investigated, which is capable of significantly increasing the bandwidth and the energy harvested from the ambient vibration. In addition, a 33-mode multilayer piezoelectric stack with force amplification frame is designed and studied, which has large power generation and high power density ratio. In the aspect of structure health monitoring, an admittance-based structure health monitoring method with a high-order resonant circuit is proposed and investigated, with advantage of increased damage detection sensitivity. In the aspect of vibration control, a self-powered piezoelectric vibration control system is proposed and investigated for flexible structures, with both functions of minimizing the vibration of the flexible structure and at the same time harvesting energy for the self-powered control implementation. In addition, a vibration and wave propagation attenuation method for metamaterials with periodic piezoelectric arrays with high-order resonant circuit shunts is proposed and developed. The proposed high-order resonant shunt circuit can introduce two local resonances in series around the tuning frequency to broaden the attenuation bandwidth, or can create two separate resonances to achieve two separate bandgaps.
dcterms.available2017-09-20T16:50:19Z
dcterms.contributorZuo, Leien_US
dcterms.contributorKao, Iminen_US
dcterms.contributorGe, Jeffreyen_US
dcterms.contributorMurray, John.en_US
dcterms.creatorZhou, Wanlu
dcterms.dateAccepted2017-09-20T16:50:19Z
dcterms.dateSubmitted2017-09-20T16:50:19Z
dcterms.descriptionDepartment of Mechanical Engineering.en_US
dcterms.extent135 pg.en_US
dcterms.formatApplication/PDFen_US
dcterms.formatMonograph
dcterms.identifierhttp://hdl.handle.net/11401/76462
dcterms.issued2015-12-01
dcterms.languageen_US
dcterms.provenanceMade available in DSpace on 2017-09-20T16:50:19Z (GMT). No. of bitstreams: 1 Zhou_grad.sunysb_0771E_12406.pdf: 6976296 bytes, checksum: c0a223e066c2f7d97154651d9bdfefce (MD5) Previous issue date: 1en
dcterms.publisherThe Graduate School, Stony Brook University: Stony Brook, NY.
dcterms.subjectMechanical engineering
dcterms.subjectenergy harvesting, piezoelectric, smart structure, structure health monitoring, tuned mass damper, vibration control
dcterms.titleMultifunctional Smart Structures for Energy Harvesting, Structure Health Monitoring, and Vibration Control
dcterms.typeDissertation


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