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Effect of Ultrasonic Vibration on Interlayer Adhesion in Fused Filament Fabrication 3D Printed ABS

机译:超声振动对熔融长丝制造3D打印ABS中层间附着力的影响

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摘要

One of the fundamental issues in the Fused Filament Fabrication (FFF) additive manufacturing process lies in the mechanical property anisotropy where the strength of the FFF-3D printed part in the build-direction can be significantly lower than that in other directions. The physical phenomenon that governs this issue is the coupled effect of macroscopic thermal mechanical issues associated with the thermal history of the interface, and the microscopic effect of the polymer microstructure and mass transfer across interfaces. In this study it was found that the use of 34.4 kHz ultrasonic vibrations during FFF-3D printing results in an increase of up to 10% in the interlayer adhesion in Acrylonitrile Butadiene Styrene (ABS), comparing the printing in identical thermal conditions to that in conventional FFF printing. This increase in the interlayer adhesion strength is attributed to the increase in polymer reptation due to ultrasonic vibration-induced relaxation of the polymer chains from secondary interactions in the interface regions.
机译:熔融长丝制造(FFF)增材制造过程中的基本问题之一在于机械性能各向异性,其中FFF-3D印刷部件在构建方向上的强度可能明显低于其他方向。控制此问题的物理现象是与界面的热历史相关的宏观热机械问题的耦合效应,以及聚合物微结构和跨界面传质的微观效应。在这项研究中,我们发现在FFF-3D打印过程中使用34.4 kHz超声振动会使丙烯腈丁二烯苯乙烯(ABS)的层间附着力增加多达10%,与在相同热条件下进行的打印相比传统的FFF打印。层间粘合强度的这种增加归因于由于超声振动引起的界面区域中的二次相互作用引起的聚合物链的松弛而引起的聚合物复制的增加。

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