Kilinc Ahmet Cagri
Department of Mechanical Engineering, Osmaniye Korkut Ata University, Osmaniye 80010, Turkey.
Polymers (Basel). 2025 Aug 31;17(17):2388. doi: 10.3390/polym17172388.
Continuous nettle fiber-reinforced PLA composites were fabricated using a custom-designed fused deposition modeling (FDM) 3D printer equipped with an in-nozzle fiber impregnation system. The influence of hatch spacing and layer thickness on fiber volume fraction, tensile strength, and fracture surface morphology was systematically examined. Fiber content increased from 7.94 vol.% to 12.21 vol.% when hatch spacing was reduced from 1.0 mm to 0.6 mm at a constant 0.4 mm layer thickness, and from 12.21 vol.% to 24.43 vol.% when layer thickness was decreased from 0.4 mm to 0.2 mm at a fixed 0.6 mm hatch spacing. When compared to neat PLA, tensile strength was improved by 18.69% for the configuration of 1_04 and 75.83% for the configuration of 06_02. SEM analysis revealed orderly fiber deposition in all samples, with 3D-printing-induced voids and fiber pull-out observed on fracture surfaces. Reduced hatch spacing and layer thickness resulted in denser fiber packing, consistent with mechanical performance trends. The results highlight the strong influence of printing parameters on the microstructural and mechanical behavior of continuous natural fiber composites produced by FDM.
采用配备喷嘴内纤维浸渍系统的定制熔融沉积建模(FDM)3D打印机制备了连续荨麻纤维增强聚乳酸(PLA)复合材料。系统研究了填充间距和层厚对纤维体积分数、拉伸强度及断裂表面形态的影响。在层厚恒定为0.4mm时,填充间距从1.0mm减小到0.6mm,纤维含量从7.94体积%增加到12.21体积%;在填充间距固定为0.6mm时,层厚从0.4mm减小到0.2mm,纤维含量从12.21体积%增加到24.43体积%。与纯PLA相比,1_04构型的拉伸强度提高了18.69%,06_02构型的拉伸强度提高了75.83%。扫描电子显微镜(SEM)分析表明,所有样品中的纤维沉积有序,在断裂表面观察到3D打印引起的孔隙和纤维拔出。填充间距和层厚的减小导致纤维堆积更致密,这与力学性能趋势一致。结果突出了打印参数对FDM制备的连续天然纤维复合材料微观结构和力学行为的强烈影响。