Hexagonal Twist Origami Pattern for Deployable Space Arrays

Collin Ynchausti, Clark Roubicek, Joseph Erickson, Brandon Sargent, S. Magleby, L. Howell
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引用次数: 3

Abstract

The hexagonal twist origami pattern has characteristics that made it a candidate for next-generation deployable space arrays. It has a deployed area that is up to 3.3 times larger than the stowed area, has a single-degree-of-freedom which simplifies actuation, it is flat-foldable making flat positions possible in both stowed and deployed positions, and its rigid foldability means that its motion is enabled by rotation about distinct axes without deformation of its panels. Although the pattern shows promise for deployable systems, it cannot be directly applied with thick materials because of the self-intersection of nesting panels. This paper presents the kinematics and mechanical advantages of the hexagonal twist pattern, addresses the self-intersection problem by implementing five different thickness accommodation techniques and provides metrics for comparing thickness accommodation techniques to determine which would be best suited for a given application. The concepts are demonstrated through two applications: a deployable reflectarray antenna and a LiDAR telescope.
可展开空间阵列的六角形扭曲折纸图案
六边形扭曲折纸图案具有使其成为下一代可展开空间阵列的候选者的特征。它的展开区域比存放区域大3.3倍,具有单一自由度,简化了驱动,它是可平折的,使得在存放和展开位置都可以实现平面位置,它的刚性可折叠性意味着它的运动可以围绕不同的轴旋转,而不会变形它的面板。尽管该模式显示出可部署系统的前景,但由于嵌套面板的自交叉,它不能直接应用于厚材料。本文介绍了六边形扭曲图案的运动学和力学优势,通过实现五种不同的厚度调节技术解决了自交问题,并提供了比较厚度调节技术的指标,以确定哪种厚度调节技术最适合给定的应用。这些概念通过两种应用进行了演示:可展开反射天线和激光雷达望远镜。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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