Journal
PRECISION ENGINEERING-JOURNAL OF THE INTERNATIONAL SOCIETIES FOR PRECISION ENGINEERING AND NANOTECHNOLOGY
Volume 47, Issue -, Pages 131-139Publisher
ELSEVIER SCIENCE INC
DOI: 10.1016/j.precisioneng.2016.07.014
Keywords
Compliant parallel mechanism; Structure optimization; Beam-based flexure; Spatial motions
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Funding
- National Research Foundation
- Singapore Centre for 3D Printing
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This paper presents a new design method to synthesize multiple degrees-of-freedom (DOF) spatial motion compliant parallel mechanisms (CPMs). Termed as the beam-based structural optimization approach, a novel curved-and-twisted (C-T) beam configuration is used as the basic design module to optimize the design parameters of the CPMs so as to achieve the targeted stiffness and dynamic characteristics. To derive well-defined fitness (objective) functions for the optimization algorithm, a new analytical approach is introduced to normalize the differences in the units, e.g., N/m or N m/rad, etc., for every component within the stiffness matrix. To evaluate the effectiveness of this design method, it was used to synthesize a 3-DOF spatial-motion (theta(x) - theta(y) - Z) CPM that delivers an optimized stiffness characteristics with a desired natural frequency of 100 Hz. A working prototype was developed and the experimental investigations show that the synthesized 3-DOF CPM can achieved a large workspace of 8 degrees x8 degrees x5.5 mm, high stiffness ratios, i.e., >200 for non-actuating over actuating stiffness, and a measured natural frequency of 84.4 Hz. 2016 Elsevier Inc. All rights reserved.
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