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Additive Manufactured Sandwich Composite/ABS Parts for Unmanned Aerial Vehicle Applications

机译:用于无人机的增材制造的三明治复合材料/ ABS零件

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摘要

Fused deposition modelling (FDM) is one of most popular 3D printing techniques of thermoplastic polymers. Nonetheless, the poor mechanical strength of FDM parts restricts the use of this technology in functional parts of many applications such as unmanned aerial vehicles (UAVs) where lightweight, high strength, and stiffness are required. In the present paper, the fabrication process of low-density acrylonitrile butadiene styrenecarbon (ABS) with carbon fibre reinforced polymer (CFRP) sandwich layers for UAV structure is proposed to improve the poor mechanical strength and elastic modulus of printed ABS. The composite sandwich structures retains FDM advantages for rapid making of complex geometries, while only requires simple post-processing steps to improve the mechanical properties. Artificial neural network (ANN) was used to investigate the influence of the core density and number of CFRP layers on the mechanical properties. The results showed an improvement of specific strength and elastic modulus with increasing the number of CFRP. The specific strength of the samples improved from 20 to 145 KN·m/kg while the Young’s modulus increased from 0.63 to 10.1 GPa when laminating the samples with CFRP layers. On the other hand, the core density had no significant effect on both specific strength and elastic modulus. A case study was undertaken by applying the CFRP/ABS/CFRP sandwich structure using the proposed method to manufacture improved dual-tilting clamps of a quadcopter UAV.
机译:熔融沉积建模(FDM)是热塑性聚合物最流行的3D打印技术之一。尽管如此,FDM零件的机械强度差,限制了该技术在需要轻便,高强度和刚度的许多应用(例如无人飞行器(UAV))的功能零件中的使用。本文提出了一种低密度丙烯腈-丁二烯-苯乙烯碳纤维(ABS)与碳纤维增强聚合物(CFRP)夹层的UAV结构制造工艺,以改善印刷ABS的不良机械强度和弹性模量。复合夹层结构保留了FDM的优势,可快速制作复杂的几何形状,而仅需简单的后处理步骤即可提高机械性能。人工神经网络(ANN)用于研究纤芯密度和CFRP层数对力学性能的影响。结果表明,随着CFRP数量的增加,比强度和弹性模量得到改善。当将样品与CFRP层压在一起时,样品的比强度从20 KN·m / kg提高到145 KN·m / kg,而杨氏模量从0.63 GPa增加到10.1 GPa。另一方面,芯密度对比强度和弹性模量均没有显着影响。通过使用所提出的方法应用CFRP / ABS / CFRP夹层结构来制造改进的四旋翼无人机双倾斜夹钳进行了案例研究。

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