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Biomimicry of the Armadillo Carapace for the Design of Bending Cylinders for Aerospace Applications

机译:犰狳甲壳的仿生学设计,用于航空航天弯曲弯管

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Shell structures play an important role in aerospace applications and beyond. Various applications require these structures to be able to articulate while maintaining an overall smooth surface to avoid drag. Inspiration for an articulating cylindrical shell is drawn from the hierarchical structure found in the armadillo carapace; this consists of alternating sections of compliant material (collagen fibers) and rigid material (bone tiles). This structure was parameterized to create five separate designs with varied thicknesses of the rigid tiles, while keeping the overall amount of each material constant. This resulted in designs that ranged from spaced, thin vertical rigid rods to continuous horizontal rigid rings - with the volume of compliant and rigid material maintained at 50% each. The designs were modeled with FEM, fabricated using additive manufacturing and tested in tension, compression, and bending. Higher bending stiffness was observed for the vertical rod-shaped designs and the lowest stiffness was obtained for the horizontal ringed design. The ringed design was also the only structure able to reach 20% strain to failure in tension and 10% strain to failure in compression. Digital image correlation revealed that the ringed design also was able to withstand higher local strains during bending than any other design. The ringed design is demonstrated to be a promising option for high strain articulating cylindrical shells. The shape can be further optimized in terms of ring shape, thickness, number of rings, and material options to meet the strains and stiffness values needed for a desired application.
机译:壳结构在航空航天应用及其他领域中起着重要作用。各种应用都要求这些结构在保持总体光滑表面以避免铰接的同时能够进行铰接。从犰狳甲壳中发现的层次结构中获得了对铰接式圆柱壳的启发。它由顺应性材料(胶原纤维)和刚性材料(骨砖)的交替部分组成。对该结构进行参数化,以创建五个具有不同厚度的刚性砖的独立设计,同时使每种材料的总量保持恒定。这导致设计的范围从隔开的细的垂直刚性杆到连续的水平刚性环-顺应性和刚性材料的体积分别保持在50%。使用FEM对设计进行建模,使用增材制造进行制造,并进行拉伸,压缩和弯曲测试。对于垂直杆状设计,观察到较高的弯曲刚度,而对于水平环状设计,则获得了最低的刚度。环形设计也是唯一能够达到20%的拉伸破坏应变和10%的压缩破坏应变的结构。数字图像相关性显示,环形设计在弯曲过程中还能够承受比任何其他设计更高的局部应变。环形设计被证明是高应变关节圆柱壳的有前途的选择。可以根据环的形状,厚度,环的数量和材料选择进一步优化形状,以满足所需应用所需的应变和刚度值。

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