College of Science, Nanjing Forestry University, Nanjing 210037, China.
School of Mechanical Engineering, Nanjing Vocational University of Industry Technology, Nanjing 210023, China.
Molecules. 2021 May 27;26(11):3234. doi: 10.3390/molecules26113234.
To develop a new kind of environment-friendly composite filament for fused deposition modeling (FDM) 3D printing, rice straw powder (RSP)/poly(lactic acid) (PLA) biocomposites were FDM-3D-printed, and the effects of the particle size and pretreatment of RSP on the properties of RSP/PLA biocomposites were investigated. The results indicated that the 120-mesh RSP/PLA biocomposites (named 120#RSP/PLA) showed better performance than RSP/PLA biocomposites prepared with other RSP sizes. Infrared results showed that pretreatment of RSP by different methods was successful, and scanning electron microscopy indicated that composites prepared after pretreatment exhibited good interfacial compatibility due to a preferable binding force between fiber and matrix. When RSP was synergistically pretreated by alkaline and ultrasound, the composite exhibited a high tensile strength, tensile modulus, flexural strength, and flexural modulus of 58.59, 568.68, 90.32, and 3218.12 MPa, respectively, reflecting an increase of 31.19%, 16.48%, 18.75%, and 25.27%, respectively, compared with unmodified 120#RSP/PLA. Pretreatment of RSP also improved the thermal stability and hydrophobic properties, while reducing the water absorption of 120#RSP/PLA. This work is believed to provide highlights of the development of cost-effective biocomposite filaments and improvement of the properties of FDM parts.
为了开发一种新型环保的熔融沉积成型(FDM)3D 打印用复合纤维,采用稻秸粉(RSP)/聚乳酸(PLA)生物复合材料进行 FDM-3D 打印,并研究了 RSP 粒径和预处理对 RSP/PLA 生物复合材料性能的影响。结果表明,120 目 RSP/PLA 复合材料(命名为 120#RSP/PLA)的性能优于其他 RSP 尺寸制备的 RSP/PLA 复合材料。红外结果表明,RSP 经不同方法预处理成功,扫描电子显微镜表明,预处理后的复合材料由于纤维与基体之间具有较好的结合力,表现出良好的界面相容性。当 RSP 经碱性和超声协同预处理时,复合材料表现出较高的拉伸强度、拉伸模量、弯曲强度和弯曲模量,分别为 58.59、568.68、90.32 和 3218.12 MPa,分别比未改性的 120#RSP/PLA 提高了 31.19%、16.48%、18.75%和 25.27%。RSP 的预处理还提高了复合材料的热稳定性和疏水性,同时降低了 120#RSP/PLA 的吸水率。这项工作有望为开发具有成本效益的生物复合材料纤维和改善 FDM 零件性能提供亮点。