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Adaptive pressure-controlled cellular structures for shape morphing I: Design and analysis

机译:用于形状变形的自适应压力控制细胞结构I:设计和分析

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This work investigates adaptive bio-inspired pressure cellular structures for shape morphing. Optimum designs for cellular structures with void and pressure cells are proposed and then structural analyses are conducted. In the present design, a unit cell is comprised of straight and curved walls. When compressed air is pumped into a pressure cell, the curved walls deform in bending due to the pressure difference in two adjacent cells that leads to overall structural deformation in extension. One-dimensional actuation strain up to 35% can be theoretically achieved. In part I, we present basic design concepts and cellular mechanics. Unlike conventional structural analysis for cellular structures, a statically indeterminate unit cell is considered and novel analytical formulations are derived for the present pressurized cellular structures in linear and nonlinear analyses. In part II, we will present experimental testing and finite element analysis to demonstrate the feasibility of the present pressurized cellular actuators for morphing wings and to validate the present cellular mechanics formulations.
机译:这项工作研究了自适应生物启发的压力细胞结构的形状变形。提出了具有空隙和压力孔的蜂窝结构的最佳设计,然后进行了结构分析。在本设计中,晶胞由直的和弯曲的壁组成。当将压缩空气泵入压力传感器时,由于两个相邻传感器中的压力差,弯曲的壁会发生弯曲变形,从而导致整体结构变形。理论上可以实现高达35%的一维驱动应变。在第一部分中,我们介绍了基本的设计概念和细胞力学。与常规的细胞结构结构分析不同,在线性和非线性分析中,考虑了静态不确定的晶胞,并针对当前的加压细胞结构推导了新的分析公式。在第二部分中,我们将提供实验测试和有限元分析,以证明本加压蜂窝式致动器变形机翼的可行性并验证当前蜂窝式力学公式。

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