Mechanical Behavior and Void Analysis of 3D Printed PEEK by Fused Deposition Modeling (FDM) with Varying Infill Patterns

Sherwin Leemark Abing, P. A. D. De Yro, S. A. C. Arañez
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Abstract

Polyether ether ketone (PEEK) was printed via FDM using gyroid, line, and tri-hexagon infill patterns. Its effect on the mechanical behavior (tensile, flexural and compression) and the investigation of void percentage and orientation angles within the internal structure were studied. The line pattern showed the highest tensile strength at 55.46 MPa due to its internal structure with a higher number of deposited layers oriented along the direction of the stress enabling higher stress absorption, the laminate theory. The angular lines on both tri-hexagon and gyroid patterns provided disadvantage as supported by Timoshenko's theory where the internal structures acted like a beam which is prone to easier deformation. Line pattern also demonstrated the highest flexural strength at 103.67 MPa. The continuity of the pattern along the internal structure perpendicular to the direction of the force provided more effective transfer of stress. However, the highest compressive load was observed in gyroid pattern with 8,266.89 N. The redundancies in the internal structure design of gyroid pattern enabled more compression load absorption. Symmetry and internal angles in gyroid and tri-hexagon patterns allowed more compressive force which are more susceptible to fractures due to higher strains created. Lastly, void percentage showed line pattern with the lowest at 1.53%. In addition, the mean void orientation angle showed that the closer it is to 0o, the weaker the part.
采用熔融沉积建模(FDM)技术三维打印具有不同填充图案的聚醚醚酮(PEEK)的力学性能和空隙分析
聚醚醚酮(PEEK)是通过 FDM 使用陀螺、直线和三六边形填充图案打印而成的。研究了其对机械行为(拉伸、弯曲和压缩)的影响,以及对内部结构中空隙百分比和取向角的调查。根据层压理论,线形图案显示出最高的拉伸强度(55.46 兆帕),这是因为其内部结构中沿应力方向沉积的层数较多,从而能够吸收更高的应力。根据季莫申科的理论,三六边形和陀螺形图案上的角线都有缺点,内部结构就像梁一样,容易变形。线形图案的抗弯强度也最高,达到 103.67 兆帕。沿内部结构垂直于受力方向的图案连续性提供了更有效的应力传递。然而,陀螺图案的压缩荷载最高,为 8,266.89 N。陀螺型和三六角型的对称性和内角允许更大的压缩力,但由于产生的应变较大,更容易发生断裂。最后,空隙率呈现线型,最低为 1.53%。此外,平均空隙取向角显示,空隙取向角越接近 0o,零件越脆弱。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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