DocumentCode
77986
Title
Design and Computational Optimization of a Decoupled 2-DOF Monolithic Mechanism
Author
Yanding Qin ; Shirinzadeh, Bijan ; Yanling Tian ; Dawei Zhang ; Bhagat, Umesh
Author_Institution
Inst. of Robot. & Autom. Inf. Syst., Nankai Univ., Tianjin, China
Volume
19
Issue
3
fYear
2014
fDate
Jun-14
Firstpage
872
Lastpage
881
Abstract
This paper presents the mechanical design, computational optimization, and experimentation of a decoupled 2-DOF monolithic mechanism. In the mechanical design, statically indeterminate leaf parallelograms provide the decoupling effect, and the displacement of the piezoelectric actuator (PEA) is amplified with a statically indeterminate lever mechanism. In a piezo-driven mechanism, the contact interface between the PEA and the mechanism is a major cause of the discrepancies between the estimated and measured characteristics. However, no explicit and reliable model is available to estimate the contact stiffness. In this paper, a computational optimization based on the response surface methodology is performed and the influence of the contact interface is taken into consideration by adding adequate safety margin to the design objectives. Ultimately, a prototype is manufactured and experimentally investigated for its characteristics and performances. Experimental results show that the developed mechanism has a workspace range in excess of 82 μm × 82 μm with a first natural frequency of 423 Hz (with a 53.4-g load mass). The cross-axis coupling ratio is experimentally measured to be below 1%, indicating excellent decoupling performances.
Keywords
design of experiments; elastic constants; microactuators; micromanipulators; optimisation; piezoelectric actuators; prototypes; response surface methodology; PEA; computational optimization; contact interface; contact stiffness estimation; cross-axis coupling ratio; decoupled 2-DOF monolithic mechanism; decoupling effect; design optimization; leaf parallelogram; mechanical design; piezo-driven mechanism; piezoelectric actuator; prototype; response surface methodology; safety margin; size 82 mum; static indeterminate lever mechanism; Flexure-based mechanism; flexure hinge; micro/nanomanipulation; optimization; piezoelectric actuator (PEA);
fLanguage
English
Journal_Title
Mechatronics, IEEE/ASME Transactions on
Publisher
ieee
ISSN
1083-4435
Type
jour
DOI
10.1109/TMECH.2013.2262801
Filename
6520876
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