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Integrating mechanism synthesis and topological optimization technique for stiffness-oriented design of a three degrees-of-freedom flexure-based parallel mechanism

机译:基于三自由度挠曲的并联机构刚度导向设计的集成机构综合与拓扑优化技术

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摘要

This paper introduces a new design approach to synthesize multiple degrees-of-freedom (DOF) flexure-based parallel mechanism (FPM). Termed as an integrated design approach, it is a systematic design methodology, which integrates both classical mechanism synthesis and modern topology optimization technique, to deliver an optimized multi-DOF FPM. This design approach is separated into two levels. At sub-chain level, a novel topology optimization technique, which uses the classical linkage mechanisms as DNA seeds, is used to synthesize the compliant joints or limbs. At configuration level, the optimal compliant joints are used to form the parallel limbs of the multi-DOF FPM and another stage of optimization was conducted to determine the optimal space distribution between these compliant joints so as to generate a multi-DOF FPM with optimized stiffness characteristic. In this paper, the design of a 3-DOF planar motion FPM was used to demonstrate the effectiveness and accuracy of this proposed design approach.
机译:本文介绍了一种新的设计方法,用于综合基于弯曲的多自由度(DOF)并行机制(FPM)。它被称为集成设计方法,是一种系统设计方法,该方法将经典机制综合和现代拓扑优化技术集成在一起,以提供优化的多自由度FPM。此设计方法分为两个级别。在子链级别,一种新颖的拓扑优化技术被用来合成顺应性的关节或四肢,该技术利用经典的链接机制作为DNA种子。在配置级别,使用最佳顺应性接头形成多自由度FPM的平行分支,并进行了另一阶段的优化以确定这些顺应性接头之间的最佳空间分布,从而生成具有优化刚度的多自由度FPM特性。在本文中,使用了3-DOF平面运动FPM的设计来证明该提议设计方法的有效性和准确性。

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