Experimental Investigation of Spatter Particle Behavior and Improvement in Build Quality in PBF-LB

Mitsuyoshi Yoshida, T. Furumoto, Kazuaki Sakuma, Kai Kawasaki, K. Itagaki
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Abstract

Laser powder bed fusion with metallic materials as a heat source (PBF-LB/M) is an additive manufacturing (AM) technique that has been applied in various industrial fields to reduce component weight, improve functionality, lower manufacturing costs, and reduce lead times. However, detailed characterization of the PBF-LB/M phenomenon is challenging because of the mutual influence of laser parameters and chamber environment. In PBF-LB/M, the powder is repeatedly melted and solidified by laser irradiation. However, the hot spatter generated in the process causes defects and insufficient melting. In this study, we use a high-speed camera to observe hot spatter ejected from the laser-irradiated area of a commercial PBF-LB/M system and investigate the effects of inert gas flow and laser scanning strategy on hot spatter behavior. We found that the ejection velocity of hot spatter immediately after ejection from the melt pool decreases as the particle size increases and is not affected by gas flow velocity. Furthermore, we observed that hot spatter is always ejected behind the laser scanning direction, but the ejection direction of the hot spatter changes over time. Particularly, when the laser scanning direction follows the gas flow direction, the spatter ejected in the backward direction of the scanning direction may follow a large curve over time to the front of the scanning direction and deposit on the build part. Based on the results of these investigations, we drew conclusions on the effect of the laser scanning direction with respect to the gas flow direction on the build quality and found that scanning the laser in the opposite direction to the gas flow is more effective in improving the surface quality.
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PBF-LB中溅射粒子行为及构建质量改善的实验研究
以金属材料为热源的激光粉末床熔融(PBF-LB/M)是一种增材制造(AM)技术,已应用于各种工业领域,以减轻部件重量,提高功能,降低制造成本,缩短交货时间。然而,由于激光参数和腔室环境的相互影响,PBF-LB/M现象的详细表征具有挑战性。在PBF-LB/M中,粉末在激光照射下反复熔化和固化。但是,过程中产生的热飞溅会导致缺陷和熔化不足。在这项研究中,我们使用高速摄像机观察了商用PBF-LB/M系统激光照射区域的热飞溅,并研究了惰性气体流量和激光扫描策略对热飞溅行为的影响。研究发现,热飞溅液喷射出熔池后的喷射速度随颗粒尺寸的增大而减小,且不受气流速度的影响。此外,我们观察到热飞溅总是在激光扫描方向的后面喷射,但热飞溅的喷射方向随时间而变化。特别是,当激光扫描方向与气流方向一致时,在扫描方向的反向喷射的飞溅物可能会随着时间的推移沿较大的曲线向扫描方向的前方喷射并沉积在构建部件上。基于这些研究结果,我们得出了激光扫描方向相对于气流方向对构建质量的影响,发现与气流方向相反的激光扫描对改善表面质量更有效。
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