García-López Erika, Medrano-Tellez Alexis G, Ibarra-Medina Juansethi R, Siller Hector R, Rodriguez Ciro A
Tecnológico de Monterrey, Escuela de Ingeniería y Ciencias, Monterrey, Nuevo León 64849, Mexico.
Department of Engineering Technology, University of North Texas, Denton, TX 76207, USA.
Micromachines (Basel). 2017 Dec 26;9(1):4. doi: 10.3390/mi9010004.
Laser cutting is a key technology for the medical devices industry, providing the flexibility, and precision for the processing of sheets, and tubes with high quality features. In this study, extensive experimentation was used to evaluate the effect of fiber laser micro-cutting parameters over average surface roughness ( R a ) and back wall dross ( D bw ) in AISI 316L stainless steel miniature tubes. A factorial design analysis was carried out to investigate the laser process parameters: pulse frequency, pulse width, peak power, cutting speed, and gas pressure. A real laser beam radius of 32.1 μm was fixed in all experiments. Through the appropriate combination of process parameters (i.e., high level of pulse overlapping factor, and pulse energy below 32 mJ) it was possible to achieve less than 1 μm in surface roughness at the edge of the laser-cut tube, and less than 3.5% dross deposits at the back wall of the miniature tube.
激光切割是医疗器械行业的一项关键技术,可为板材和管材的加工提供灵活性和高精度,具备高质量特性。在本研究中,通过大量实验来评估光纤激光微切割参数对AISI 316L不锈钢微型管平均表面粗糙度(R a)和后壁熔渣(D bw)的影响。开展了析因设计分析以研究激光加工参数:脉冲频率、脉冲宽度、峰值功率、切割速度和气压。在所有实验中,实际激光束半径固定为32.1μm。通过工艺参数的适当组合(即高水平的脉冲重叠因子和低于32mJ的脉冲能量),可以使激光切割管边缘的表面粗糙度小于1μm,微型管后壁的熔渣沉积小于3.5%。