Experimental and finite element analyses on the vibration behavior of 3D-printed PET-G tapered beams with fused filament fabrication

IF 1.7 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Multidiscipline Modeling in Materials and Structures Pub Date : 2023-05-08 DOI:10.1108/mmms-11-2022-0265
Berkay Ergene, G. Atlıhan, A. Pınar
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Abstract

PurposeThis study aims to reveal the influences of three-dimensional (3D) printing parameters such as layer heights (0.1 mm, 0.2 mm and 0.4 mm), infill rates (40, 70 and 100%) and geometrical property as tapered angle (0, 0.25 and 0.50) on vibrational behavior of 3D-printed polyethylene terephthalate glycol (PET-G) tapered beams with fused filament fabrication (FFF) method.Design/methodology/approachIn this performance, all test specimens were modeled in AutoCAD 2020 software and then 3D-printed by FFF. The effects of printing parameters on the natural frequencies of 3D-printed PET-G beams with different tapered angles were also analyzed experimentally, and numerically (finite element analysis) via Ansys APDL 16 program. In addition to vibrational properties, tensile strength, elasticity modulus, hardness, and surface roughness of the 3D-printed PET-G parts were examined.FindingsIt can be stated that average surface roughness values ranged between 1.63 and 6.91 µm. In addition, the highest and lowest hardness values were found as 68.6 and 58.4 Shore D. Tensile strength and elasticity modulus increased with the increase of infill rate and decrease of the layer height. In conclusion, natural frequency of the 3D-printed PET-G beams went up with higher infill rate values though no critical change was observed for layer height and a change in tapered angle fluctuated the natural frequency values significantly.Research limitations/implicationsThe influence of printing parameters on the vibrational properties of 3D-printed PET-G beams with different tapered angles was carried out and the determination of these effects is quite important. On the other hand, with the addition of glass or carbon fiber reinforcements to the PET-G filaments, the material and vibrational properties of the parts can be examined in future works.Practical implicationsAs a result of this study, it was shown that natural frequencies of the 3D-printed tapered beams from PET-G material can be predicted via finite element analysis after obtaining material data with the help of mechanical/physical tests. In addition, the outcome of this study can be used as a reference during the design of parts that are subjected to vibration such as turbine blades, drone arms, propellers, orthopedic implants, scaffolds and gears.Social implicationsIt is believed that determination of the effect of the most used 3D printing parameters (layer height and infill rate) and geometrical property of tapered angle on natural frequencies of the 3D-printed parts will be very useful for researchers and engineers; especially when the importance of resonance is known well.Originality/valueWhen the literature efforts are scanned in depth, it can be seen that there are many studies about mechanical or wear properties of the 3D-printed parts. However, this is the first study which focuses on the influences of the both 3D printing parameters and tapered angles on the vibrational behaviors of the tapered PET-G beams produced with material extrusion based FFF method. In addition, obtained experimental results were also supported with the performed finite element analysis.
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熔丝制造3d打印PET-G锥形梁振动特性的实验和有限元分析
本研究旨在揭示层高(0.1 mm、0.2 mm和0.4 mm)、填充率(40%、70%和100%)和锥度几何特性(0、0.25和0.50)等三维(3D)打印参数对熔融长丝制造(FFF)方法3D打印聚对苯二甲酸乙二醇酯(PET-G)锥度梁振动行为的影响。设计/方法/方法在本次表演中,所有的试件都是在AutoCAD 2020软件中建模,然后由FFF进行3d打印。实验分析了打印参数对不同锥度的3d打印PET-G梁固有频率的影响,并通过Ansys APDL 16程序进行了数值模拟(有限元分析)。除了振动性能外,还测试了3d打印PET-G部件的抗拉强度、弹性模量、硬度和表面粗糙度。平均表面粗糙度值在1.63 ~ 6.91µm之间。硬度最大值为68.6,最小值为58.4 Shore d。拉伸强度和弹性模量随填充率的增加和层高的降低而增大。综上所述,3d打印PET-G梁的固有频率随着填充率的增加而增加,但层高没有发生临界变化,而锥度角的变化会显著影响固有频率值。研究局限性/意义研究了打印参数对不同锥度的3d打印PET-G梁振动特性的影响,确定这些影响是非常重要的。另一方面,通过在PET-G长丝中添加玻璃或碳纤维增强,可以在未来的工作中检查零件的材料和振动性能。实际意义本研究结果表明,在机械/物理测试的帮助下获得材料数据后,可以通过有限元分析预测PET-G材料3d打印锥形梁的固有频率。此外,本研究结果可为涡轮叶片、无人机臂、螺旋桨、骨科植入物、支架、齿轮等易受振动部件的设计提供参考。人们相信,确定最常用的3D打印参数(层高和填充率)和锥度几何特性对3D打印部件固有频率的影响将对研究人员和工程师非常有用;尤其是当共振的重要性众所周知的时候。原创性/价值当深入扫描文献努力时,可以看到有很多关于3d打印部件的力学或磨损性能的研究。然而,这是第一次研究3D打印参数和锥度角对基于材料挤压FFF法生产的锥度PET-G梁振动行为的影响。此外,所得到的实验结果也得到了有限元分析的支持。
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来源期刊
CiteScore
3.70
自引率
5.00%
发文量
60
期刊介绍: Multidiscipline Modeling in Materials and Structures is published by Emerald Group Publishing Limited from 2010
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