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基于增材制造参数的用于生物医学应用的熔融长丝制造聚醚醚酮的机械性能。

Mechanical properties of fused filament fabricated PEEK for biomedical applications depending on additive manufacturing parameters.

作者信息

Wang Yiqiao, Müller Wolf-Dieter, Rumjahn Adam, Schmidt Franziska, Schwitalla Andreas Dominik

机构信息

Charité - Universitätsmedizin Berlin, Corporate Member of Freie Universität Berlin, Humboldt-Universität zu Berlin, Berlin Institute of Health, Dental Materials and Biomaterial Research, Department of Prosthodontics, Geriatric Dentistry and Craniomandibular Disorders, Aßmannshauser Str. 4-6, 14197, Berlin, Germany.

Orion Additive Manufacturing GmbH, Gustav-Meyer-Allee 25, 13355, Berlin, Germany.

出版信息

J Mech Behav Biomed Mater. 2021 Mar;115:104250. doi: 10.1016/j.jmbbm.2020.104250. Epub 2020 Dec 6.

Abstract

of experiments was employed to investigate the combinations of 3D-printing parameters for Polyether ether ketone (PEEK) with a fused filament fabrication (FFF) process and to quantitatively evaluate the quality of 3D printed parts. This research was conducted using a newly developed FFF 3D printer and PEEK filament. Standard PEEK parts were 3D printed for bending and compression tests. Based on the Box-Behnken design, a three factors based experiment was designed using the Response Surface Methodology (RSM). Nozzle diameter, nozzle temperature and printing speed were involved. The density and dimensional accuracy of these printed parts were evaluated, and the bending and compression tests were conducted. The nozzle diameter was found to be the most significant parameter affecting the bending and compression performance of the printed PEEK samples, followed by printing speed and nozzle temperature. The highest accuracy in sample width was obtained with a 0.6 mm nozzle while the most accurate diameter was obtained with a 0.4 mm nozzle. A combination of a 0.4 mm nozzle diameter, 430 °C nozzle temperature and printing speed of 5 mm/s was beneficial to get the densest samples and therefore the highest bending strength; a reduction of internal defects was achieved with a 0.2 mm nozzle, a higher nozzle temperature of 440 °C and slower printing speed leading to better bending modulus. The best compression properties were achieved with a 0.6 mm nozzle, with relatively low influence of the other parameters. Different parameter combinations have been found to obtain optimal mechanical properties. Optimized parameters for better dimension accuracy of small additively manufactured PEEK parts were also achieved depending on the shape of the specimens.

摘要

通过实验研究聚醚醚酮(PEEK)在熔融长丝制造(FFF)工艺中的3D打印参数组合,并定量评估3D打印部件的质量。本研究使用新开发的FFF 3D打印机和PEEK长丝进行。3D打印标准PEEK部件用于弯曲和压缩测试。基于Box-Behnken设计,采用响应面法(RSM)设计了一个基于三个因素的实验。涉及喷嘴直径、喷嘴温度和打印速度。评估了这些打印部件的密度和尺寸精度,并进行了弯曲和压缩测试。发现喷嘴直径是影响打印PEEK样品弯曲和压缩性能的最显著参数,其次是打印速度和喷嘴温度。使用0.6毫米喷嘴时样品宽度的精度最高,而使用0.4毫米喷嘴时直径最精确。0.4毫米喷嘴直径、430°C喷嘴温度和5毫米/秒的打印速度组合有利于获得密度最高的样品,从而获得最高的弯曲强度;使用0.2毫米喷嘴、440°C的较高喷嘴温度和较慢的打印速度可减少内部缺陷,从而获得更好的弯曲模量。使用0.6毫米喷嘴可获得最佳压缩性能,其他参数的影响相对较小。已发现不同的参数组合可获得最佳机械性能。根据试样形状,还实现了用于提高小型增材制造PEEK部件尺寸精度的优化参数。

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