Casavola Caterina, Cazzato Alberto, Moramarco Vincenzo, Renna Gilda
Dipartimento di Meccanica, Matematica e Management (DMMM)-Politecnico di Bari-Viale Japigia 182⁻70126 Bar, Italy.
Materials (Basel). 2019 Apr 19;12(8):1295. doi: 10.3390/ma12081295.
In the Fused Filament Fabrication (FFF) process, the part is built as a layer-by-layer deposition of a feedstock filament material. The continuous improvements of the FFF have changed the main purpose of this technique from rapid prototyping to a rapid manufacturing method. Then, it is fundamental to determine the material properties of FFF parts as a function of the service load. The impact loads and, in particular, a high strain rates tensile impact can be a critical issue in FFF part and, in general, for plastic materials. The aim of the present work is to characterise the mechanical behaviour of FFF parts under tensile impact loads. To this purpose, three different orientations (i.e., 0°, 45° and 90°) both single- and multilayer specimens, have been printed. Finally, the influence of the impact speed on the mechanical behaviour has also been tested under three different values of speed (3.78 m/s, 3.02 m/s and 2.67 m/s). The results show that the FFF parts are influenced by the raster orientation, confirming the orthotropic behaviour also under dynamic loads, while the variation of impact speed, on peak force and absorbed energy, is limited.
在熔融沉积成型(FFF)工艺中,零件是通过逐层沉积原料丝状材料构建而成的。FFF技术的不断改进已将该技术的主要目的从快速成型转变为一种快速制造方法。那么,根据服役载荷确定FFF零件的材料性能至关重要。冲击载荷,尤其是高应变率拉伸冲击,对于FFF零件以及一般的塑料材料而言可能是一个关键问题。本工作的目的是表征FFF零件在拉伸冲击载荷下的力学行为。为此,打印了三种不同取向(即0°、45°和90°)的单层和多层试样。最后,还在三种不同速度值(3.78米/秒、3.02米/秒和2.67米/秒)下测试了冲击速度对力学行为的影响。结果表明,FFF零件受光栅取向的影响,这也证实了在动态载荷下的正交各向异性行为,而冲击速度对峰值力和吸收能量的影响有限。