The effect of infill pattern, infill density, printing speed and temperature on the additive manufacturing process based on the FDM technology for the hook-shaped components

N. Tho, Tong Cong Minh, Nguyen Phat Tai
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引用次数: 3

Abstract

The additive manufacturing technology based on the principle of material addition is an important technology in product design, manufacturing, and development. In addition, the trend in the recent future of this technology will be a major step to develop in the rapid manufacturing industry. Among the rapid prototyping technologies, the most popular FDM (fused deposition modeling) technology has been widely applied in the practice. The quality of rapid prototyping technology in general as well as FDM technology in particular mainly depends on the parameters in the prototyping and operational process. In this paper, the optimum parameters of the prototyping process based on the FDM technology are identified to improve the tensile strength of 3D printing products with PLA and PLA-copper materials. The parameters are chosen in the process of doing the experiments such as infill pattern, fill density, print speed, and print temperature. Then, based on Taguchi analysis technique, the experimental planning method is employed for design and optimization, with the support of Analysis of Variance (ANOVA) to evaluate and identify the influence of parameters on the tensile strength of the printed hook-shaped product. The results highlighted that the maximum tensile force of the sample is printed with PLA-Copper material with the optimum parameters is infill density of 75%, printing speed of 65 mm/s, and temperature of 185°C.
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研究了填充模式、填充密度、打印速度和温度对基于FDM技术的钩形零件增材制造工艺的影响
基于材料增材原理的增材制造技术是产品设计、制造和开发中的一项重要技术。此外,该技术在近期的发展趋势将是快速制造业发展的重要一步。在快速成型技术中,最流行的FDM(熔融沉积建模)技术在实践中得到了广泛的应用。快速成型技术,特别是FDM技术的质量主要取决于成型和操作过程中的参数。为了提高PLA和PLA-copper材料的3D打印产品的抗拉强度,本文确定了基于FDM技术的成型工艺的最佳参数。在实验过程中对填充图案、填充密度、打印速度、打印温度等参数进行了选择。然后,基于田口分析技术,采用实验规划方法进行设计和优化,并在方差分析(ANOVA)的支持下,评估和识别参数对打印的钩形产品抗拉强度的影响。结果表明,在填充密度为75%、打印速度为65 mm/s、温度为185℃的条件下,PLA-Copper材料可打印出试样的最大拉伸力。
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