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Design of flexure-based precision transmission mechanisms using screw theory

机译:基于螺旋理论的基于挠度的精密传动机构设计

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This paper enables the synthesis of flexure-based transmission mechanisms that possess multiple decoupled inputs and outputs of any type (e.g., rotations, translations, and/or screw motions), which are linked by designer-specified transmission ratios. A comprehensive library of geometric shapes is utilized from which a multiplicity of feasible concepts that possess the desired transmission characteristics may be rapidly conceptualized and compared before an optimal concept is selected. These geometric shapes represent the mathematics of screw theory and uniquely link a body's desired motions to the flexible constraints that enable those motions. This paper is significant to the design of nano-positioners, motion stages, and optical mounts. It is also significant to the design of transmission-based microstructural architectures for creating new materials with extraordinary mechanical properties. The microstructural architecture for a material that achieves a negative Poisson's ratio as well as a hand-actuated two degree of freedom (DOF) microscopy stage are designed as case studies to demonstrate the utility of this theory.
机译:本文实现了基于挠曲的传动机构的综合,该机构具有多个解耦的任意类型的输入和输出(例如,旋转,平移和/或螺杆运动),这些输入和输出通过设计者指定的传动比链接在一起。利用全面的几何形状库,可以在选择最佳概念之前,快速地对具有所需传输特性的多个可行概念进行概念化和比较。这些几何形状代表了螺旋理论的数学原理,并将物体的所需运动唯一地与实现这些运动的柔性约束联系在一起。本文对于纳米定位器,运动平台和光学底座的设计具有重要意义。对于基于传输的微结构体系结构的设计(用于创建具有非凡机械性能的新材料)也很重要。为达到负泊松比和手动操作的两个自由度(DOF)显微镜阶段的材料的微观结构,被设计为案例研究,以证明该理论的实用性。

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