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Melt Pool Analysis and Mesoscale Simulation of Laser Powder Bed Fusion Process (L-PBF) with Ti-6Al-4V Powder Particles

机译:用Ti-6AL-4V粉末颗粒(L-PBF)激光粉末融合过程(L-PBF)的熔融池分析和Messcale模拟

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摘要

The laser powder bed fusion (L-PBF) process is accompanied by rapid melting and solidification that results in intense thermocapillary convection within the melt pool. Open-source particle simulation software was utilized to generate a single layer of spherical powder particles of variable diameter. Considering the importance of particle size and the particle size distribution (PSD) in the L-PBF process, three distinct categories of PSD were generated with identical settings. A three-dimensional (3D) thermofluid model was developed in this study, incorporating the generated layer of powder particles of nonuniform size over a thick substrate. A moving volumetric heat source was applied to melt a single track in the powder layer using a user-defined function in FLUENT software. Temperature-dependent material properties including variable surface tension were considered in the computation. The numerical model was used to simulate Ti-6Al-4V powder particles to observe the melt pool flow dynamics. Presence of particles of smaller diameter in the powder mix supported consistent and continuous melt pool flow, while any kind of void enhanced fluid convection in the downward direction, causing a temporal increase in melt pool depth.
机译:激光粉末融合(L-PBF)工艺伴随着快速熔化和凝固,导致熔体库中的热热量对流。利用开源粒子仿真软件生成可变直径的单层球形粉末颗粒。考虑到L-PBF过程中粒度和粒度分布(PSD)的重要性,产生了相同的设置产生了三种不同的PSD。在该研究中开发了一种三维(3D)热流体模型,将产生的非均匀尺寸的粉末颗粒层掺入厚基材上。应用移动的体积热源在流畅的软件中使用用户定义的功能来施加移动的体积热源以在粉末层中熔化单个轨道。在计算中考虑了包括可变表面张力的温度依赖性材料性能。数值模型用于模拟Ti-6Al-4V粉末颗粒以观察熔池流量动力学。在粉末混合物中存在较小直径的颗粒,支撑一致和连续的熔池流量,而任何类型的空隙在向下方向上的流体对流,导致熔池深度的时间增加。

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