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Nanoparticle-enabled increase of energy efficiency during laser metal additive manufacturing

机译:纳米颗粒在激光金属增材制造过程中提高能源效率

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The low energy efficiency of the laser metal additive manufacturing (AM) process is a potential sustainability concern for large-scale industrial production. Explicit investigation of the energy efficiency for laser melting requires the direct characterization of melt pool dimension and vapor depression, which is very difficult due to the opaque nature of the molten metal. Here we report the direct observation and quantification of effects of the TiC nanoparticles on the vapor depression and melt pool formation during laser powder bed fusion (LPBF) of Al6061 by in-situ high-speed high-energy x-ray imaging. Based on the quantification results, we calculated the laser melting energy efficiency (defined here as the ratio of the energy needed to melt the material to the energy delivered by the laser beam) with and without TiC nanoparticles during LPBF of Al6061. The results show that adding TiC nanoparticles into Al6061 leads to a significant increase of laser melting energy efficiency (114% increase on average, 521% increase under 312 W laser power, 0.4 m/s scan speed). Systematic property measurement, simulation, and x-ray imaging studies enable us, for the first time, to identify that three mechanisms work together to enhance the laser melting energy efficiency: (1) adding TiC nanoparticles increases the absorptivity; (2) adding TiC nanoparticles decreases the thermal conductivity, and (3) adding TiC nanoparticles enables the initiation of vapor depression and multiple reflection at lower laser power (i.e., lowers the laser power threshold for keyholing). The method and mechanisms of using TiC nanoparticles to increase the laser melting energy efficiency during LPBF of Al6061 we reported here may guide the development of feedstock materials for more energy efficient laser metal AM.
机译:激光的能量效率低的金属加法制造(AM)是一个过程潜在的可持续性对大规模的关心工业生产。激光熔化需要的能源效率的直接表征熔池维度和蒸汽抑郁,这是非常困难由于不透明的熔融性质金属。抽搐的量化的效果纳米粒子在蒸汽抑郁和融化池中形成激光粉末床上融合(LPBF) Al6061现场高速高能x射线成像。量化结果,我们计算了激光能源效率(这里定义为融化融化的材料所需要的能量的比例交付的激光束的能量)没有抽搐在LPBF的纳米颗粒Al6061。纳米颗粒进入Al6061导致显著增加激光融化的能源效率(114%增加平均增加521%低于312 W激光功率、0.4 m / s扫描速度)。房产测量、模拟和x射线成像研究使我们,第一次确定三个机制共同努力提高激光融化能源效率:(1)添加抽搐纳米颗粒增加吸收率;降低热导率,(3)添加抽搐纳米粒子使启动蒸汽的抑郁和多次反射较低的激光功率(即降低了激光功率锁眼阈值)。使用抽搐纳米粒子增加的机制激光消融在LPBF能源效率Al6061这里报道的指导原料材料的发展节能激光金属。

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