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Design and Computational Optimization of a Decoupled 2-DOF Monolithic Mechanism

机译:解耦的2自由度单片机构的设计与计算优化

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摘要

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.
机译:本文介绍了一种解耦的2-DOF单片机构的机械设计,计算优化和实验。在机械设计中,超静力叶片平行四边形提供去耦效果,并且压电致动器(PEA)的位移通过超静力杆机构放大。在压电驱动的机构中,PEA与机构之间的接触界面是导致估算特性与测量特性之间存在差异的主要原因。但是,没有明确可靠的模型可用来估算接触刚度。在本文中,基于响应面方法进行了计算优化,并通过在设计目标中添加足够的安全余量来考虑接触界面的影响。最终,制造出原型并对其特性和性能进行实验研究。实验结果表明,所开发的机构具有超过82μm×82μm的工作空间范围,其第一固有频率为423 Hz(负载质量为53.4 g)。实验测量的横轴耦合比低于1%,表明具有出色的去耦性能。

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