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DYNAMICS ANALYSIS OF THE DEPLOYMENT OF MIURA-ORIGAMI SHEETS

机译:多孔折纸板展开过程的动力学分析

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摘要

Origami has emerged as a promising tool for the design of mechanical structures that can be folded into small volume and expanded to large structures, which enables the desirable features of compact storage and effective deployment. Most attention to date on origami deployment has been on its geometry, kinematics, and quasi-static mechanics, while the dynamics of deployment has not been systematically studied. On the other hand, deployment dynamics could be important in many applications, especially in high speed operation and low damping conditions. This research investigates the dynamic characteristics of the deploying process of origami structures through investigating a Miura-Ori sheet (Fig. l(b, c)). In this study, we have utilized the stored energy in pre-deformed spring elements to actuate the deployment. We theoretically model and numerically analyze the deploying process of the origami sheet. Specifically, the sheet is modeled by bar-and-hinge blocks, in which the facet and crease stiffnesses are modeled to be related to the bar axial deformation and torsional motion at the creases. On the other hand, the structural inertia is modelled as mass points assigned at hinges. Numerical simulations show that, apart from axial contraction and expansion, the origami structure can exhibit transverse motion during the deploying process. Further investigation reveals that the transverse motion has close relationship with the controlled deploying rate. This research will pave the way for further analysis and applications of the dynamics of origami-based structures.
机译:折纸已经成为一种设计机械结构的有前途的工具,可以折叠成小体积并扩展为大型结构,从而实现紧凑存储和有效部署的理想功能。迄今为止,折纸展开的最受关注的是几何形状,运动学和准静态力学,而展开的动力学尚未得到系统的研究。另一方面,在许多应用中,尤其是在高速运行和低阻尼条件下,部署动态可能很重要。这项研究通过研究Miura-Ori片材来研究折纸结构展开过程的动力学特征(图1(b,c))。在这项研究中,我们利用了预变形弹簧元件中存储的能量来驱动展开。我们从理论上对折纸的展开过程进行建模和数值分析。具体而言,该薄板由条形和铰链块建模,其中,刻面和折痕刚度建模为与条形件的轴向变形和折痕处的扭转运动有关。另一方面,将结构惯性建模为在铰链处分配的质量点。数值模拟表明,除轴向收缩和膨胀外,折纸结构在展开过程中还可以表现出横向运动。进一步的研究表明,横向运动与控制的展开速率密切相关。这项研究将为基于折纸的结构动力学的进一步分析和应用铺平道路。

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