Chao Yu-Deh, Liu Shu-Cheng, Chen Fu-Lin, Prajapati Mayur Jiyalal, Kumar Ajeet, Tsai Jung-Ting, Jeng Jeng-Ywan
High Speed 3D Printing Research Center, National Taiwan University of Science and Technology, No. 43, Sec. 4, Keelung Rd., Taipei 106, Taiwan.
Department of Mechanical Engineering, National Taiwan University of Science and Technology, No. 43, Sec. 4, Keelung Rd., Taipei 106, Taiwan.
Materials (Basel). 2025 Jan 19;18(2):447. doi: 10.3390/ma18020447.
Selective laser sintering (SLS) is one of the prominent methods of polymer additive manufacturing (AM). A low-power laser source is used to directly melt and sinter polymer material into the desired shape. This study focuses on the utilization of the low-power laser SLS system to successfully manufacture metallic components through the development of a metal-polymer composite material. In this study, 17-4 PH stainless powders are used and mixed with polyoxymethylene (POM) and high-density polyethylene (HDPE) to prepare the composite powder material. The polymeric mixture is removed during the thermal degreasing process and subsequent sintering results in a solid metallic component. Sinterit Lisa with a 5 W, 808 nm laser source is used to fabricate the green part. For the printing parameters of 140 °C, laser power of 35.87 mJ/mm, and layer thickness of 100 μm, the printed samples achieved a maximum density of 3.61 g/cm and a complete shape. After sintering at 1310 °C for 180 min, the tensile strength of the shrunk sample is 605.64 MPa, the hardness is HRC 14.8, the average shrinkage rate is 22%, and the density is 7.57 g/cm, which can reach 97% of the theoretical density. This process allows the use of a wide range of particle sizes that the usual AM technologies have, making it a low-cost, low-energy-consumption, high-speed AM technology.
选择性激光烧结(SLS)是聚合物增材制造(AM)的主要方法之一。低功率激光源用于直接将聚合物材料熔化并烧结成所需形状。本研究聚焦于利用低功率激光SLS系统,通过开发金属-聚合物复合材料来成功制造金属部件。在本研究中,使用17-4 PH不锈钢粉末,并将其与聚甲醛(POM)和高密度聚乙烯(HDPE)混合以制备复合粉末材料。在热脱脂过程中去除聚合物混合物,随后烧结得到固态金属部件。使用配备5 W、808 nm激光源的Sinterit Lisa来制造坯件。对于140℃的打印参数、35.87 mJ/mm的激光功率和100μm的层厚,打印样品实现了3.61 g/cm的最大密度和完整形状。在1310℃烧结180分钟后,收缩后样品的拉伸强度为605.64 MPa,硬度为HRC 14.8,平均收缩率为22%,密度为7.57 g/cm,可达到理论密度的97%。该工艺允许使用常规增材制造技术所具有的各种粒径,使其成为一种低成本、低能耗、高速的增材制造技术。