dc.creatorKiyono, César Yukishigue
dc.creatorSilva, Emilio Carlos Nelli
dc.creatorReddy, J N
dc.date.accessioned2013-11-06T16:03:02Z
dc.date.accessioned2018-07-04T16:23:54Z
dc.date.available2013-11-06T16:03:02Z
dc.date.available2018-07-04T16:23:54Z
dc.date.created2013-11-06T16:03:02Z
dc.date.issued2012
dc.identifierInternational Journal for Numerical Methods in Engineering, Hoboken, v. 90, n. 12, supl. 1, Part 2, p. 1452-148, 2012
dc.identifier0029-5981
dc.identifierhttp://www.producao.usp.br/handle/BDPI/42278
dc.identifier10.1002/nme.3371
dc.identifierhttp://dx.doi.org/10.1002/nme.3371
dc.identifier.urihttp://repositorioslatinoamericanos.uchile.cl/handle/2250/1635300
dc.description.abstractSensor and actuator based on laminated piezocomposite shells have shown increasing demand in the field of smart structures. The distribution of piezoelectric material within material layers affects the performance of these structures; therefore, its amount, shape, size, placement, and polarization should be simultaneously considered in an optimization problem. In addition, previous works suggest the concept of laminated piezocomposite structure that includes fiber-reinforced composite layer can increase the performance of these piezoelectric transducers; however, the design optimization of these devices has not been fully explored yet. Thus, this work aims the development of a methodology using topology optimization techniques for static design of laminated piezocomposite shell structures by considering the optimization of piezoelectric material and polarization distributions together with the optimization of the fiber angle of the composite orthotropic layers, which is free to assume different values along the same composite layer. The finite element model is based on the laminated piezoelectric shell theory, using the degenerate three-dimensional solid approach and first-order shell theory kinematics that accounts for the transverse shear deformation and rotary inertia effects. The topology optimization formulation is implemented by combining the piezoelectric material with penalization and polarization model and the discrete material optimization, where the design variables describe the amount of piezoelectric material and polarization sign at each finite element, with the fiber angles, respectively. Three different objective functions are formulated for the design of actuators, sensors, and energy harvesters. Results of laminated piezocomposite shell transducers are presented to illustrate the method. Copyright (C) 2012 John Wiley & Sons, Ltd.
dc.languageeng
dc.publisherWILEY-BLACKWELL
dc.publisherHOBOKEN
dc.relationInternational Journal for Numerical Methods in Engineering
dc.rightsCopyright WILEY-BLACKWELL
dc.rightsrestrictedAccess
dc.subjectPIEZOCOMPOSITE SHELL
dc.subjectFIBER ORIENTATION
dc.subjectTOPOLOGY OPTIMIZATION
dc.subjectPIEZOELECTRIC TRANSDUCER DESIGN
dc.subjectENERGY HARVESTER DESIGN
dc.titleDesign of laminated piezocomposite shell transducers with arbitrary fiber orientation using topology optimization approach
dc.typeArtículos de revistas


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