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3D printed recoverable honeycomb composites reinforced by continuous carbon fibers

机译:3D印刷可回收蜂窝复合材料由连续碳纤维加固

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摘要

This paper reports the failure and recovery mechanisms of 3D-printed lightweight honeycomb composites. Through this experimental study, we demonstrate the enhanced mechanical performance of 3D-printed composite structures and their ability for shape recovery under heat excitation. The remarkable mechanical performance of the reinforced honeycombs draws from the combination of the structural geometry and the tailored material composition. The results show that the addition of continuous fibers enables the honeycomb structure to avoid catastrophic failure even at high levels of deformation, which allows the shape memory effect to be activated and nearly 87% percent of the initial structural shape to be recovered. Moreover, the reinforced honeycombs exhibit enhanced properties: the specific energy absorption and specific stiffness of the reinforced honeycombs are up to 2 times greater than those of the conventional honeycombs. These enhanced mechanical properties combined with the controllable shape recovery of the 3D-printed structures can be used in the design of novel energy absorbing and protective material systems, biomedical devices, and actuators.
机译:本文报告了3D印刷轻质蜂窝复合材料的故障和恢复机制。通过该实验研究,我们展示了3D印刷复合结构的力学性能及其在热激发下的形状回收能力。增强蜂窝的显着力学性能从结构几何形状和量身的材料组合物的组合中汲取。结果表明,即使在高水平的变形下,添加连续纤维的添加使蜂窝结构能够避免灾难性失效,这允许形状记忆效应被激活,并且近87%的初始结构形状的百分之几。此外,增强蜂窝表现出增强性能:增强蜂窝的特定能量吸收和特定刚度高达常规蜂窝体的2倍。这些增强的机械性能结合了3D印刷结构的可控形状回收,可用于设计新的能量吸收和保护材料系统,生物医学装置和致动器。

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