Idriss Aboubaker I B, Li Jian, Wang Yangwei, Guo Yanling, Elfaki Elkhawad A, Adam Shareef A
College of Mechanical and Electrical Engineering, Northeast Forestry University, Harbin 150040, China.
Department of Mechanical Engineering, Faculty of Engineering Science, University of Nyala, P.O. Box 155, 11111 Nyala, Sudan.
Materials (Basel). 2020 Jul 7;13(13):3034. doi: 10.3390/ma13133034.
The range of selective laser sintering (SLS) materials is currently limited, and the available materials are often of high cost. Moreover, the mechanical strength of wood-plastic SLS parts is low, which restricts the application of a SLS technology. A new composite material has been proposed to address these issues, while simultaneously valorizing agricultural and forestry waste. This composite presents several advantages, including reduced pollution associated with waste disposal and reduced CO emission with the SLS process in addition to good mechanical strength. In this article, a novel and low-cost Prosopis chilensis/polyethersulfone composite (PCPC) was used as a primary material for SLS. The formability of PCPC with various raw material ratios was investigated via single-layer experiments, while the mechanical properties and dimensional accuracy of the parts produced using the various PCPC ratios were evaluated. Further, the microstructure and particle distribution in the PCPC pieces were examined using scanning electron microscopy. The result showed that the SLS part produced via 10/90 (wt/wt) PCPC exhibited the best mechanical strength and forming quality compared to other ratios and pure polyethersulfone (PES), where bending and tensile strengths of 10.78 and 4.94 MPa were measured. To improve the mechanical strength, post-processing infiltration was used and the PCPC-waxed parts were enhanced to 12.38 MPa and 5.73 MPa for bending and tensile strength.
选择性激光烧结(SLS)材料的范围目前有限,且现有材料成本往往很高。此外,木塑SLS零件的机械强度较低,这限制了SLS技术的应用。人们提出了一种新型复合材料来解决这些问题,同时实现农业和林业废弃物的增值利用。这种复合材料具有多个优点,包括减少与废物处理相关的污染、在SLS过程中减少二氧化碳排放以及具有良好的机械强度。在本文中,一种新型低成本的智利牧豆树/聚醚砜复合材料(PCPC)被用作SLS的主要材料。通过单层实验研究了不同原料比例的PCPC的成型性,同时评估了使用不同PCPC比例生产的零件的机械性能和尺寸精度。此外,使用扫描电子显微镜检查了PCPC零件的微观结构和颗粒分布。结果表明,与其他比例以及纯聚醚砜(PES)相比,通过10/90(重量/重量)PCPC生产的SLS零件表现出最佳的机械强度和成型质量,其弯曲强度和拉伸强度分别为10.78 MPa和4.94 MPa。为了提高机械强度,采用了后处理渗透工艺,PCPC涂蜡零件的弯曲强度和拉伸强度提高到了12.38 MPa和5.73 MPa。