DocumentCode :
2000136
Title :
Toward design of Functionally Graded Piezoelectric Ultrasonic Motors using topology optimization
Author :
Rubio, Wilfredo Montealegre ; Silva, Emilio Carlos Nelli
Author_Institution :
Dept. of Mechatron. Eng., Univ. of Sao Paulo, Sao Paulo, Brazil
fYear :
2009
fDate :
20-23 Sept. 2009
Firstpage :
2592
Lastpage :
2595
Abstract :
In this work, piezoelectric ultrasonic motors are designed based on the Functionally Graded Material (FGM) concept by using topology optimization. FGMs are composite advanced materials, which are made by changing gradually the properties with position inside material domain. The FGM concept applied to piezoelectric structures allows modifying their dynamic characteristics. In this work, Functionally Graded Piezoelectric Ultrasonic Motors (FGPUMs) are designed, aiming to find the optimal topology and gradation of the material properties along a specific direction to target desired eigenmode shapes. The design of FGPUMs is not an easy task to be accomplished by using trial and error methods; thus, the Topology Optimization Method (TOM) is applied to reach this goal. Here, FGPUMs are designed as standing-wave motors, by combining different vibration modes (different eigenmodes). The eigenmode control is achieved by maximizing the amplitude of vibration at certain user-defined points. The Modal Assurance Criterion is applied as mode shape-tracking method. To treat the material gradation, the Graded Finite Element is implemented. The optimization algorithm is implemented based on Sequential Linear Programming. To show the improvement and the advantage of using FGM and TOM for designing FGPUMs, a graded ultrasonic piezomotor, with material gradation along thickness direction, is considered.
Keywords :
composite materials; finite element analysis; functionally graded materials; optimisation; piezoceramics; piezoelectric motors; ultrasonic devices; FGPUM design; composite advanced materials; eigenmode control; eigenmode shapes; functionally graded material concept; functionally graded piezoelectric ultrasonic motors; graded finite element method; graded ultrasonic piezomotor; modal assurance criterion; piezoelectric structure dynamic characteristics; sequential linear programming; standing wave motors; topology optimization method; vibration amplitude maximisation; vibration modes; Composite materials; Design optimization; Finite element methods; Linear programming; Material properties; Optimization methods; Piezoelectric materials; Shape; Topology; Vibration control; Functionally Graded Materials; Piezoelectric Motors; Standing-Wave Motors; Topology Optimization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics Symposium (IUS), 2009 IEEE International
Conference_Location :
Rome
ISSN :
1948-5719
Print_ISBN :
978-1-4244-4389-5
Electronic_ISBN :
1948-5719
Type :
conf
DOI :
10.1109/ULTSYM.2009.5441799
Filename :
5441799
Link To Document :
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