Toward Optimal Design of Piezoelectric Transducers Based on Multifunctional and Smoothly Graded Hybrid Material Systems


Autoria(s): Rubio, Wilfredo Montealegre; Silva, Emilio Carlos Nelli; Paulino, Gláucio Hermógenes
Contribuinte(s)

UNIVERSIDADE DE SÃO PAULO

Data(s)

18/10/2012

18/10/2012

2009

Resumo

This work explores the design of piezoelectric transducers based on functional material gradation, here named functionally graded piezoelectric transducer (FGPT). Depending on the applications, FGPTs must achieve several goals, which are essentially related to the transducer resonance frequency, vibration modes, and excitation strength at specific resonance frequencies. Several approaches can be used to achieve these goals; however, this work focuses on finding the optimal material gradation of FGPTs by means of topology optimization. Three objective functions are proposed: (i) to obtain the FGPT optimal material gradation for maximizing specified resonance frequencies; (ii) to design piezoelectric resonators, thus, the optimal material gradation is found for achieving desirable eigenvalues and eigenmodes; and (iii) to find the optimal material distribution of FGPTs, which maximizes specified excitation strength. To track the desirable vibration mode, a mode-tracking method utilizing the `modal assurance criterion` is applied. The continuous change of piezoelectric, dielectric, and elastic properties is achieved by using the graded finite element concept. The optimization algorithm is constructed based on sequential linear programming, and the concept of continuum approximation of material distribution. To illustrate the method, 2D FGPTs are designed for each objective function. In addition, the FGPT performance is compared with the non-FGPT one.

FAPESP (Sao Paulo State Foundation Research Agency)[05/01762-5]

FAPESP (Sao Paulo State Foundation Research Agency)[2006/57805-7]

FAPESP (Sao Paulo State Foundation Research Agency)[2008/5070-0]

CNPq - National Council for Research and Development, Brazil[304208/2006-0]

Identificador

JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, v.20, n.14, p.1725-1746, 2009

1045-389X

http://producao.usp.br/handle/BDPI/18346

10.1177/1045389X09337085

http://dx.doi.org/10.1177/1045389X09337085

Idioma(s)

eng

Publicador

SAGE PUBLICATIONS LTD

Relação

Journal of Intelligent Material Systems and Structures

Direitos

restrictedAccess

Copyright SAGE PUBLICATIONS LTD

Palavras-Chave #piezoelectric transducers #hybrid materials #functionally graded materials (FGMs) #topology optimization #mode-tracking #continuum material distribution #mode assurance criterion (MAC) #piezoelectric modal constant (PMC) #STRUCTURAL TOPOLOGY OPTIMIZATION #FINITE-ELEMENTS #WAVE-PROPAGATION #NONHOMOGENEOUS MATERIALS #ULTRASONIC TRANSDUCERS #ACTUATORS #PLATE #MICROSTRUCTURE #DERIVATIVES #VIBRATION #Materials Science, Multidisciplinary
Tipo

article

original article

publishedVersion