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THE SNAP-THROUGH OF FOUR-FOLD ORIGAMI CONES

机译:四折折纸锥体的捕获量

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Some insects, such as beetles, are able to store their wings under their elytra by folding them and can rapidly deploy their wings for flight. The crease patterns of these wings allow the fold/unfold kinematics to take place using simple manipulation, and to remain stable in both configurations. It has been observed that the structures of the beetle wings are kinetically multi-stable origami. The crease pattern of these wings is comprised of a peculiar arrangement of four-fold vertices. In this manuscript, we show preliminary work towards studying the non-flat (conical) four-fold vertices observed in the wing structure using experiments and rigid origami analysis. We construct four-fold origami paper cones of varying angles and study their snap-through behavior under varying point-load configurations. From these experiments, the threshold forces, displacements and duration timescale of snap-through buckling are extracted. Similarly, we study the snap-through instability of two-dimensional (2D) arches having a vertex, which provide insights into the wing folds and are hypothesized to represent properties which facilitate the deployability of the wing. Using the pseudo-rigid body model (PRBM) [1], we numerically analyze the kinematics and potential energy of the snap-though buckling of 2D arches, and show that the model captures the kinematic behavior sufficiently well to provide insights of energetic behavior from kinematic experimental results. Overall, our approach shows promise in studying the design and kinetics of the insect wing origami, and could enable the design of bio-inspired deployable engineering structures.
机译:一些昆虫,如甲虫,能够通过折叠它们将它们的翅膀存放在他们的鞘翅下,并可以迅速展开他们的翅膀飞行。这些翅膀的折痕模式允许使用简单操作进行折叠/展开的运动学,并且在这两种配置中保持稳定。已经观察到甲虫翅膀的结构是动力学上的多稳态折纸。这些翼的折痕图案由四倍顶点的特殊排列组成。在本手稿中,我们展示了使用实验和刚性折纸分析研究在机翼结构中观察到的非平面(锥形)四折顶点的初步工作。我们构建了不同角度的四折折纸纸锥,并在不同的点加载配置下研究了它们的快速行为。从这些实验中,提取阈值力,位移和持续时间刻度的卡通屈曲。类似地,我们研究了卡扣通过具有顶点的二维(2D)拱门,它提供深入的翼折叠并且被假设为表示其促进机翼的可部署性的不稳定性。使用伪刚体模型(PRBM)[1],我们在数值上分析了2D拱门的卡路里扣的运动学和潜在能量,并表明该模型足够好地捕获了运动行为,以提供精力量行为的见解运动实验结果。总体而言,我们的方法显示了研究昆虫翼折纸的设计和动力学的承诺,可以实现生物启发的可部署工程结构的设计。

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