Publication:
Electromechanical analysis of functionally graded panels with surface-integrated piezo-patches for optimal energy harvesting

dc.contributor.coauthorAnamagh, Mirmeysam Rafiei
dc.contributor.coauthorBediz, Bekir
dc.contributor.departmentN/A
dc.contributor.departmentDepartment of Mechanical Engineering
dc.contributor.kuauthorMotlagh, Peyman Lahe
dc.contributor.kuauthorBaşdoğan, İpek
dc.contributor.kuprofilePhD Student
dc.contributor.kuprofileFaculty Member
dc.contributor.otherDepartment of Mechanical Engineering
dc.contributor.schoolcollegeinstituteGraduate School of Sciences and Engineering
dc.contributor.schoolcollegeinstituteCollege of Engineering
dc.contributor.yokid355153
dc.contributor.yokid179940
dc.date.accessioned2024-11-09T22:45:30Z
dc.date.issued2021
dc.description.abstractThis paper presents an electromechanical modeling approach for predicting the dynamics of (straight/curved) functionally graded panels with multiple surface-integrated piezo-patches. Bi-axial material variation is considered using the theory of mixture approach. The governing equations are derived following the first order shear deformation theory and the Hamilton?s principle. The derived boundary value problem is solved numerically using a meshless approach based on Chebyshev polynomials. Mass and stiffness contributions of piezo-patch (es), as well as two-way electromechanical coupling behavior, are incorporated both for modal and harmonic analyses. To validate the accuracy of the presented solution technique, the results for various cases are compared to those obtained from finite-element analyses. It is shown that the maximum difference in the predicted natural frequencies is below 1%, but for a fraction of the computational time. Furthermore, the harmonic analysis results excellently match FE results. Note that material variation changes the spatial stiffness of the panel and thus, the functionally graded panel can be designed according to a predefined objective function using the proposed modeling approach. As a demonstration, specific to energy harvesting application, the voltage/power output was maximized through material and geometry/shape variations. It was demonstrated that significant improvements can be achieved through the presented methodology.
dc.description.indexedbyWoS
dc.description.indexedbyScopus
dc.description.openaccessNO
dc.description.publisherscopeInternational
dc.description.volume263
dc.identifier.doi10.1016/j.compstruct.2021.113714
dc.identifier.eissn1879-1085
dc.identifier.issn0263-8223
dc.identifier.quartileQ1
dc.identifier.scopus2-s2.0-85101609160
dc.identifier.urihttp://dx.doi.org/10.1016/j.compstruct.2021.113714
dc.identifier.urihttps://hdl.handle.net/20.500.14288/6102
dc.identifier.wos632435700001
dc.keywordsEnergy harvesting
dc.keywordsPiezoelectric
dc.keywordsFunctionally graded materials
dc.keywordsDoubly-curved
dc.keywordsChebyshev
dc.languageEnglish
dc.publisherElsevier Sci Ltd
dc.sourceComposite Structures
dc.subjectMechanics
dc.subjectMaterials science
dc.subjectComposites
dc.titleElectromechanical analysis of functionally graded panels with surface-integrated piezo-patches for optimal energy harvesting
dc.typeJournal Article
dspace.entity.typePublication
local.contributor.authorid0000-0003-4811-4237
local.contributor.authorid0000-0001-9092-5856
local.contributor.kuauthorMotlagh, Peyman Lahe
local.contributor.kuauthorBaşdoğan, İpek
relation.isOrgUnitOfPublicationba2836f3-206d-4724-918c-f598f0086a36
relation.isOrgUnitOfPublication.latestForDiscoveryba2836f3-206d-4724-918c-f598f0086a36

Files