Li Guiwei, Zhao Ji, Wu Wenzheng, Jiang Jili, Wang Bofan, Jiang Hao, Fuh Jerry Ying Hsi
School of Mechanical Science and Engineering, Jilin University, Renmin Street 5988, Changchun 130025, China.
Department of Mechanical Engineering, National University of Singapore, Singapore 117576, Singapore.
Materials (Basel). 2018 May 17;11(5):826. doi: 10.3390/ma11050826.
Fused deposition modeling 3D printing has become the most widely used additive manufacturing technology because of its low manufacturing cost and simple manufacturing process. However, the mechanical properties of the 3D printing parts are not satisfactory. Certain pressure and ultrasonic vibration were applied to 3D printed samples to study the effect on the mechanical properties of 3D printed non-crystalline and semi-crystalline polymers. The tensile strength of the semi-crystalline polymer polylactic acid was increased by 22.83% and the bending strength was increased by 49.05%, which were almost twice the percentage increase in the tensile strength and five times the percentage increase in the bending strength of the non-crystalline polymer acrylonitrile butadiene styrene with ultrasonic strengthening. The dynamic mechanical properties of the non-crystalline and semi-crystalline polymers were both improved after ultrasonic enhancement. Employing ultrasonic energy can significantly improve the mechanical properties of samples without modifying the 3D printed material or adjusting the forming process parameters.
熔融沉积成型3D打印因其制造成本低、制造工艺简单,已成为应用最为广泛的增材制造技术。然而,3D打印部件的机械性能并不理想。对3D打印样品施加一定压力和超声振动,以研究其对3D打印非晶态和半晶态聚合物机械性能的影响。半晶态聚合物聚乳酸的拉伸强度提高了22.83%,弯曲强度提高了49.05%,这几乎是非晶态聚合物丙烯腈-丁二烯-苯乙烯经超声强化后拉伸强度提高百分比的两倍,弯曲强度提高百分比的五倍。超声增强后,非晶态和半晶态聚合物的动态力学性能均得到改善。利用超声能量可显著提高样品的机械性能,而无需改变3D打印材料或调整成型工艺参数。