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A parametric study and characterization of additively manufactured continuous carbon fiber reinforced composites for high-speed 3D printing

机译:用于高速3D打印的含有连续碳纤维增强复合材料的参数研究与表征

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摘要

High-speed 3D printing has recently gained much interest due to its potentials in improving efficiency of fabricating complex geometry components and applications in large-scale additive manufacturing (AM). In this study, a parametric study is performed experimentally to investigate factors affecting high-speed 3D printing of continuous carbon fiber reinforced composites (CFRCs), including material deposition rate, print (nozzle traverse) speed, and nozzle tilt angle based on a novel multi-axis AM approach. The method uses thermoplastic pellets and continuous carbon fiber tows as feedstock materials. The obtained sample quality and mechanical properties are investigated with respect to deposition rate, print speed, and nozzle tilt angle. The fiber impregnation quality is examined through microstructure analysis and correlated with the process conditions and mechanical properties. Increasing deposition rate and tilt angle both improve fiber impregnation quality, enabling implementation of higher print speed and yielding improved mechanical properties. This, combined with demonstrations of printed complex geometry components, shows the great potentials of the proposed method for AM of continuous CFRCs at high speeds. The results of this study also provide further guidance on design and manufacturing of large-volume, high-strength CFRCs through 3D printing.
机译:高速3D打印技术因其在提高复杂几何元件的制造效率以及在大规模加性制造(AM)中的应用而备受关注。在本研究中,通过实验研究了影响连续碳纤维增强复合材料(CFRCs)高速3D打印的因素,包括材料沉积速率、打印(喷嘴移动)速度和基于新型多轴AM方法的喷嘴倾斜角。该方法使用热塑性颗粒和连续碳纤维丝束作为原料。获得的样品质量和机械性能与沉积速率、打印速度和喷嘴倾斜角度有关。通过微观结构分析对纤维浸渍质量进行了检验,并与工艺条件和力学性能进行了关联。增加沉积速率和倾斜角度都可以提高纤维浸渍质量,实现更高的打印速度,并改善机械性能。结合印刷复杂几何组件的演示,显示了所提出的方法在高速连续CFRC AM中的巨大潜力。本研究的结果也为通过3D打印设计和制造大体积、高强度CFRC提供了进一步的指导。

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