Title:
Structure-borne elastic wave energy harvesting enhanced by metamaterial concepts

dc.contributor.advisor Erturk, Alper
dc.contributor.advisor Degertekin, F. Levent
dc.contributor.author Tol, Serife
dc.contributor.committeeMember Sabra, Karim
dc.contributor.committeeMember Ruzzene, Massimo
dc.contributor.committeeMember Yu, Min-Feng
dc.contributor.department Mechanical Engineering
dc.date.accessioned 2017-08-17T18:58:42Z
dc.date.available 2017-08-17T18:58:42Z
dc.date.created 2017-08
dc.date.issued 2017-05-10
dc.date.submitted August 2017
dc.date.updated 2017-08-17T18:58:42Z
dc.description.abstract Existing research on vibration-based energy harvesting has been mainly focused on the harvesting of vibrational energy available at a fixed position in space. Such an approach is convenient for designing and employing linear and nonlinear vibration-based energy harvesters, such as base-excited cantilevers with piezoelectric laminates undergoing persistent excitation that yield modal vibrations. This theoretical and experimental research is centered on the harvesting of structure-borne propagating elastic waves in one-dimensional and two-dimensional settings. Specifically, it is aimed to enhance the harvested elastic wave energy by exploiting concepts from metamaterials and phononic crystals. First, the focus is placed on a one-dimensional beam configuration for piezoelectric energy harvesting from bending waves through optimal resistive-reactive electrical loading, spatially localized obstacle for harvesting local reflections, and a multifunctional energy-harvesting electromechanical non-reflective boundary condition in a semi-infinite setting. Next, two-dimensional efficient wave energy harvesting concepts are explored by means of novel wave mirror and lens concepts in elastic plates. Mirror concepts are studied thoroughly with a focus on their scattering characteristics. In this context, structurally embedded mirrors and bandgap-based mirrors are presented. As an alternative approach for plane wave focusing, elastic lenses are designed by creating a gradient distribution of the refractive index of the phononic crystals (PC) and locally resonant (LR) unit cells. To this end, a Gradient-Index Phononic Crystal Lens (GRIN-PCL), a 3D printed GRIN-PCL, and an omnidirectional Luneburg lens are fabricated and experimentally validated. In addition, wave focusing is explored with GRIN lenses composed of LR subwavelength unit cells towards enabling enhanced low frequency energy harvesting. Overall, this work provides electroelastic models and metamaterial-based approaches to efficient elastic wave energy harvesting. Beyond enhanced energy harvesting, ramifications of this work range from MEMS implementation to 3D printed platforms for structural integration in sensing applications and nondestructive testing.
dc.description.degree Ph.D.
dc.format.mimetype application/pdf
dc.identifier.uri http://hdl.handle.net/1853/58645
dc.language.iso en_US
dc.publisher Georgia Institute of Technology
dc.subject Piezoelectric energy harvesting
dc.subject Wave focusing
dc.subject Gradient index lens
dc.subject Elastic mirror
dc.subject Phononic crystals
dc.subject Locally resonant metamaterials
dc.title Structure-borne elastic wave energy harvesting enhanced by metamaterial concepts
dc.type Text
dc.type.genre Dissertation
dspace.entity.type Publication
local.contributor.advisor Degertekin, F. Levent
local.contributor.advisor Erturk, Alper
local.contributor.corporatename George W. Woodruff School of Mechanical Engineering
local.contributor.corporatename College of Engineering
relation.isAdvisorOfPublication 9afd92fe-bb98-4c83-b8ac-fc596320991a
relation.isAdvisorOfPublication c1624a65-4a10-483d-8219-eff452d368cd
relation.isOrgUnitOfPublication c01ff908-c25f-439b-bf10-a074ed886bb7
relation.isOrgUnitOfPublication 7c022d60-21d5-497c-b552-95e489a06569
thesis.degree.level Doctoral
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