Effect of Printing Orientation and Layer Thickness on Microstructure and Mechanical Properties of PLA Parts

Rahimah Abdul Hamid, Siti Nur Hidayah Husni, Teruaki Ito, Barbara Sabine Linke
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Abstract

Due to the layer-by-layer printing process, additively manufactured objects frequently display directional dependencies in their structure. It affects the material properties of the fabricated parts concerning various process parameters of the machine. This paper presents the effect of layer thickness and printing orientation on the mechanical properties and microstructure of polylactic acid (PLA)3D printed parts fabricated by Fused Deposition Modeling (FDM). Computer-aided design models of a tensile and compression test specimen were created, conforming to the ASTM: D638 (Type 1 and Type IV) and ASTM D695, respectively. The microstructure was evaluated using a Scanning Electron Microscope (SEM) on the fracture surface during the tensile test and optical microscopy on the compression specimens. The finding shows that a low layer thickness setting contributes to the highest tensile strength in the 0° printing orientation, while a medium and high layer thickness results in a better tensile strength for a 45° and 90° printing orientation. Therefore, printing orientation is more influential than layer thickness in the tensile test. As for the compressive strength, the stress decreases when the layer thickness increases and the low layer thickness setting offers the highest compressive strength at all printing orientations. The microstructure shows more significant interlayer gaps, incomplete filling, and weak bonding on the cross-sectional samples of the fractured tensile surface with lower strength. The 0° printing orientation offers better tensile strength for all layer thicknesses, minimum build time, and good compressive strength compared to other printing orientations.
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打印方向和层厚对PLA零件组织和力学性能的影响
由于逐层打印过程,增材制造的对象在其结构中经常显示方向依赖性。机床的各种工艺参数影响着被制件的材料性能。研究了层厚和打印方向对熔融沉积成型(FDM)聚乳酸(PLA)3D打印件力学性能和微观结构的影响。创建了拉伸和压缩试验试样的计算机辅助设计模型,分别符合ASTM: D638 (Type 1和Type IV)和ASTM D695。采用扫描电镜(SEM)对拉伸试样的断口进行了显微组织观察,并对压缩试样进行了光学显微镜观察。研究结果表明,在0°印刷方向上,低层厚度设置可以获得最高的抗拉强度,而在45°和90°印刷方向上,中等和高层厚度设置可以获得更好的抗拉强度。因此,在拉伸试验中,印刷方向比层厚影响更大。在抗压强度方面,随着层厚的增加,应力减小,低层厚设置在各印刷方向上的抗压强度最高。在强度较低的断裂拉伸面截面试样上,微观结构表现为更明显的层间间隙、不完全填充和弱结合。与其他打印方向相比,0°打印方向为所有层厚度提供了更好的抗拉强度、最短的构建时间和良好的抗压强度。
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