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Characterization of residual stress and deformation in additively manufactured ABS polymer and composite specimens

机译:增材制造的ABS聚合物和复合材料样品中残余应力和变形的表征

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Residual stresses induced in the layer-by-layer fabrication process of additively manufactured parts have significant impact on their mechanical properties and dimensional accuracy. This work aims to characterize the residual stress and deformation in specimens based on unreinforced acrylonitrile-butadienestyrene (ABS), carbon nanotube reinforced ABS and short carbon fiber reinforced ABS. The shrinkage and displacement fields were obtained, respectively, by thermal treatment as well as Digital Image Correlation observation of specimens before and after sectioning. The microstructure and porosity of additively manufactured specimens were also examined using X-ray micro-computed tomography. Specimen shrinkage and porosity content were significantly influenced by the process parameters of raster angle and printing speed, as well as material types. Faster printing speed led to larger porosity and residual stress, as well as higher shrinkage after specimen thermal treatment. Raster angle had a greater influence on specimen shrinkage and porosity as comparing to printing speed. Composite printing wires based on carbon nanotube and short carbon fiber in ABS greatly reduced specimen shrinkage and deformation, while increased the porosity, especially for carbon fiber reinforced ABS specimens. (C) 2017 Elsevier Ltd. All rights reserved,
机译:在增材制造零件的逐层制造过程中产生的残余应力对其机械性能和尺寸精度产生重大影响。这项工作旨在表征基于未增强的丙烯腈-丁二烯苯乙烯(ABS),碳纳米管增强的ABS和短碳纤维增强的ABS的样品中的残余应力和变形。分别通过热处理以及切片前后的数字图像相关性观察获得收缩和位移场。还使用X射线微计算机断层扫描技术检查了加成样品的微观结构和孔隙率。样品的收缩率和孔隙率含量受光栅角度,印刷速度以及材料类型等工艺参数的显着影响。更快的打印速度导致更大的孔隙率和残余应力,以及样品热处理后的更大收缩率。与印刷速度相比,光栅角对样品的收缩率和孔隙率有更大的影响。 ABS中基于碳纳米管和短碳纤维的复合印刷线大大减少了样品的收缩和变形,同时增加了孔隙率,特别是对于碳纤维增强的ABS样品。 (C)2017 Elsevier Ltd.保留所有权利,

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