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首页> 外文期刊>Journal of Materials Processing Technology >An improved fused deposition modeling process for forming large-size thin-walled parts
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An improved fused deposition modeling process for forming large-size thin-walled parts

机译:用于形成大型薄壁零件的改进的熔融沉积建模工艺

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Aiming at the problem of severe warping, deformation and crack during the fabrication of large-size thin walled parts, an improved fused deposition modeling process with laser-assisted heating was put forward to improve the forming quality and shape accuracy. The numerical model of the improved FDM process was established to analyze the thermal field and three-dimensional (3D) solidified morphology during the forming process. The dependency relationship among the forming temperature, shear rate and the thermo-physical properties of forming material, such as viscosity and surface tension, were considered in the model. The numerical model was verified by experiments from two aspects: the temperature information and the solidified morphology. The effects of forming speed, laser power and the ways of laser heating on the surface temperature distribution and viscosity of the forming material were investigated. Incremental forming experiments of ABS thin-walled parts was carried out under several laser irradiation conditions and forming speeds using the improved process. The results show that the lateral laser-assisted heating has more obvious effect in increasing the temperature of the local forming regions than the pre and post-laser-assisted heating. Tensile strength of test unit had a maximum increase of 195% when the lateral laser-assisted heating was employed. Meanwhile, the shape accuracy of the fabricated thin-walled parts can be improved obviously, and the effective bonding width between layers was about 24% larger than that without laser-assisted heating. (C) 2016 Elsevier B.V. All rights reserved.
机译:针对大尺寸薄壁零件制造过程中严重的翘曲,变形和裂纹问题,提出了一种改进的激光辅助加热熔融沉积成型工艺,以提高成形质量和形状精度。建立了改进的FDM工艺的数值模型,以分析成形过程中的热场和三维(3D)凝固形态。在模型中考虑了成形温度,剪切速率和成形材料的热物理性质(如粘度和表面张力)之间的依赖关系。通过实验从温度信息和凝固形态两个方面对数值模型进行了验证。研究了成形速度,激光功率和激光加热方式对成形材料表面温度分布和粘度的影响。在改进的工艺条件下,在几种激光辐照条件和成形速度下进行了ABS薄壁零件的增量成形实验。结果表明,与激光辅助加热前后相比,横向激光辅助加热在提高局部成形区域温度方面具有更明显的效果。当使用横向激光辅助加热时,测试单元的拉伸强度最大增加了195%。同时,可以显着提高所制造的薄壁部件的形状精度,并且层之间的有效结合宽度比没有激光辅助加热时的有效结合宽度大约24%。 (C)2016 Elsevier B.V.保留所有权利。

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