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Modelling particle impact on the melt pool and wettability effects in laser directed energy deposition additive manufacturing

机译:对熔池的造型粒子影响和激光定向能量沉积添加剂制造中的润湿性效应

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In powder based Laser-Directed Energy Deposition (L-DED), an incident laser melts a millimeter scale pool of metal, into which feedstock powder is sprayed. Previous high speed video reveals that powders are trapped by surface tension and float for a brief residence time before melting, directly contributing to surface roughness and loss of mass capture efficiency. In this work, influencing factors on this behavior are investigated with numerical models through coupling a three phase (gas, liquid, solid) Computational Fluid Dynamics (CFD) model with applied surface tension to a heat transfer model and observing the melting dynamics of an individual powder particle of stainless steel 316 L. Sensitivity of residence time to particle size, impact velocity, melt pool and particle temperature, surface tension, and material thermophysical properties are investigated. It is found that simulations can be condensed into a simplified analytic equation, providing a rapid, explicit estimation of residence time. The demonstrated sensitivity of L-DED to powder scale surface wettability phenomena highlights a fundamental mechanistic reason why control of feedstock powder properties is essential for reliable system behavior.
机译:在基于粉末的激光定向能量沉积(L-DED)中,入射激光熔化毫米级金属池,喷涂原料粉末。以前的高速视频显示,粉末被表面张力捕获并漂浮在熔化前的简短停留时间,直接导致表面粗糙度和质量捕获效率的损失。在这项工作中,通过耦合三相(气体,液体,固体)计算流体动力学(CFD)模型对传热模型的三相(气体,液体,固体)计算流体动力学(CFD)模型来研究对该行为的影响因素。不锈钢316L的粉末颗粒。研究了粒度,冲击速度,熔池和颗粒温度,表面张力和材料热物理性质的敏感性。结果发现,仿真可以冷凝成简化的分析方程,提供了快速,显式估算停留时间。 L-DED对粉末尺度表面润湿性现象的敏感性突出了为什么对可靠的系统行为来控制原料粉性能至关重要的基本机械原因。

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