Amza Catalin Gheorghe, Zapciu Aurelian, Baciu Florin, Vasile Mihai Ion, Nicoara Adrian Ionut
Department of Quality Engineering and Industrial Technologies, Faculty of Industrial Engineering and Robotics, University "Politehnica" of Bucharest, 060042 Bucharest, Romania.
Department of Robotics and Production Systems, Faculty of Industrial Engineering and Robotics, University "Politehnica" of Bucharest, 060042 Bucharest, Romania.
Polymers (Basel). 2021 Nov 26;13(23):4132. doi: 10.3390/polym13234132.
In outdoor environments, the action of the Sun through its ultraviolet radiation has a degrading effect on most materials, with polymers being among those affected. In the past few years, 3D printing has seen an increased usage in fabricating parts for functional applications, including parts destined for outdoor use. This paper analyzes the effect of accelerated aging through prolonged exposure to UV-B on the mechanical properties of parts 3D printed from the commonly used polymers polylactic acid (PLA) and polyethylene terephthalate-glycol (PETG). Samples 3D printed from these materials went through a dry 24 h UV-B exposure aging treatment and were then tested against a control group for changes in mechanical properties. Both the tensile and compressive strengths were determined, as well as changes in material creep characteristics. After irradiation, PLA and PETG parts saw significant decreases in both tensile strength (PLA: -5.3%; PETG: -36%) and compression strength (PLA: -6.3%; PETG: -38.3%). Part stiffness did not change significantly following the UV-B exposure and creep behavior was closely connected to the decrease in mechanical properties. A scanning electron microscopy (SEM) fractographic analysis was carried out to better understand the failure mechanism and material structural changes in tensile loaded, accelerated aged parts.
在户外环境中,太阳通过紫外线辐射对大多数材料具有降解作用,聚合物便是受影响的材料之一。在过去几年中,3D打印在制造功能性应用部件方面的使用有所增加,包括用于户外的部件。本文分析了通过长时间暴露于UV-B进行加速老化对由常用聚合物聚乳酸(PLA)和聚对苯二甲酸乙二醇酯(PETG)3D打印的部件机械性能的影响。由这些材料3D打印的样品经过24小时的UV-B干燥暴露老化处理,然后针对对照组测试机械性能的变化。测定了拉伸强度和抗压强度以及材料蠕变特性的变化。辐照后,PLA和PETG部件的拉伸强度(PLA:-5.3%;PETG:-36%)和抗压强度(PLA:-6.3%;PETG:-38.3%)均显著下降。UV-B暴露后部件刚度没有显著变化,蠕变行为与机械性能的下降密切相关。进行了扫描电子显微镜(SEM)断口分析,以更好地了解拉伸加载、加速老化部件的失效机制和材料结构变化。