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Rotational 3D printing of damage-tolerant composites with programmable mechanics

机译:具有可编程机制的耐损复合材料的旋转3D打印

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摘要

Natural composites exhibit exceptional mechanical performance that often arises from complex fiber arrangements within continuous matrices. Inspired by these natural systems, we developed a rotational 3D printing method that enables spatially controlled orientation of short fibers in polymer matrices solely by varying the nozzle rotation speed relative to the printing speed. Using this method, we fabricated carbon fiber–epoxy composites composed of volume elements (voxels) with programmably defined fiber arrangements, including adjacent regions with orthogonally and helically oriented fibers that lead to nonuniform strain and failure as well as those with purely helical fiber orientations akin to natural composites that exhibit enhanced damage tolerance. Our approach broadens the design, microstructural complexity, and performance space for fiber-reinforced composites through site-specific optimization of their fiber orientation, strain, failure, and damage tolerance.
机译:天然复合材料表现出卓越的机械性能,这通常是由于连续基体内的复杂纤维排列所致。受这些自然系统的启发,我们开发了一种旋转3D打印方法,该方法仅通过改变相对于打印速度的喷嘴旋转速度,即可在聚合物基质中对短纤维进行空间控制的定向。使用这种方法,我们制造了由体积元素(体素)组成的碳纤维-环氧树脂复合材料,这些元素具有可编程的纤维排列方式,包括具有正交和螺旋取向纤维的相邻区域,这些区域会导致不均匀的应变和破坏,以及那些具有纯粹螺旋纤维取向的区域表现出增强的耐损伤性的天然复合材料我们的方法通过对纤维增强复合材料的纤维取向,应变,破坏和破坏容忍度进行特定位置的优化,从而拓宽了纤维增强复合材料的设计,微观结构的复杂性和性能空间。

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