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Mechanical Performance of Tubular Microtruss Materials Reinforced With Nanocrystalline Sleeves

机译:纳米晶套管增强管状微桁架材料的力学性能

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Microtruss cellular materials are assemblies of struts with characteristic features in the μm to mm scale, arranged in a periodic, three-dimensional architecture. Compared to conventional cellular architectures (e.g. stochastic foams and honeycombs), they can possess improved structural efficiency, because externally applied loads are resolved axially along the constituent struts. We have recently fabricated composite microtruss materials by electrodepositing reinforcing nanocrystalline sleeves on tubular polymeric scaffolds. These materials can offer enhanced structural performance by exploiting advantageous properties along three length scales: the inherent strength of the electrodeposited material (grain size reduction to the nm scale), its location away from the bending axis of the struts (cross-sectional efficiency in the μm scale), and the spatial arrangement of the struts (architectural efficiency in the mm scale). This study uses finite element analysis and experimental methods to characterize the mechanical properties of these composite materials.
机译:微桁架蜂窝材料是具有周期性,三维结构排列的具有微米到毫米尺度特征特征的支杆组件。与常规蜂窝结构(例如,随机泡沫和蜂窝)相比,它们可以具有提高的结构效率,因为外部施加的载荷沿组成支柱轴向分解。我们最近通过将增强纳米晶套筒电沉积在管状聚合物支架上来制造复合微桁架材料。这些材料可通过利用三种长度尺度的有利特性来提供增强的结构性能:电沉积材料的固有强度(晶粒尺寸减小至nm尺度),其远离支撑杆弯曲轴的位置(横截面效率)。微米级),以及支柱的空间布置(毫米级的建筑效率)。这项研究使用有限元分析和实验方法来表征这些复合材料的力学性能。

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