Ao Xiaohui, Liu Jianhua, Xia Huanxiong, Yang Ye
School of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, China.
Yangtze Delta Region Academy of Beijing Institute of Technology, Jiaxing 314000, China.
Materials (Basel). 2022 Apr 13;15(8):2850. doi: 10.3390/ma15082850.
Selective laser melting is a typical powder-bed additive manufacturing technology, for which it is difficult and expensive to observe and measure the molten pool due to its short lifetime and tiny size. This paper introduced a two-stage mesoscopic layer-by-layer simulation framework for the numerical study of the SLM process, where the powder laying and laser scanning are included and conducted alternatively. For the simulation of powder laying, the dynamic behaviors of the particles as well as the particle-particle and particle-scraper interactions are included. For the simulation of laser scanning, a coupled multi-phase and multi-physics system was considered, where the effects of surface tension, Marangoni effect, and vapor recoil are considered, and the behaviors of heat transfer, fluid flow, and melting/solidification are simulated. This simulation framework was then used to simulate the Ti-6Al-4V SLM process. The evolutions of the molten pool and track were presented, and the characteristics of the molten pool, keyhole, and track were analyzed and discussed, specifically, the effects of the laser power and scanning speed on the three-dimensional morphology and size of the molten pool were numerically studied, and their dependencies were discussed and found.
选择性激光熔化是一种典型的粉末床增材制造技术,由于熔池寿命短且尺寸微小,对其进行观察和测量既困难又昂贵。本文介绍了一种用于选择性激光熔化过程数值研究的两阶段介观逐层模拟框架,该框架包含铺粉和激光扫描,并交替进行。对于铺粉模拟,考虑了颗粒的动态行为以及颗粒-颗粒和颗粒-刮刀相互作用。对于激光扫描模拟,考虑了一个耦合的多相多物理系统,其中考虑了表面张力、马兰戈尼效应和蒸汽反冲的影响,并模拟了传热、流体流动和熔化/凝固行为。然后使用该模拟框架对Ti-6Al-4V选择性激光熔化过程进行模拟。给出了熔池和熔道的演变过程,并对熔池、匙孔和熔道的特征进行了分析和讨论,具体而言,数值研究了激光功率和扫描速度对熔池三维形态和尺寸的影响,并讨论和发现了它们之间的相关性。