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Computational simulation of metal droplet break-up, cooling and solidification during gas atomisation

机译:气体雾化过程中金属液滴破裂,冷却和凝固的计算模拟

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摘要

In an atomisation process for powder production, metal droplets go through undercooling, recalescence, peritectic and segregated solidification before fully solidified. The cooling process is further complicated by droplet break-up during the atomisation. This paper describes a numerical model which combines both cooling and break-up in a single computation. The dynamic history of droplets is solved as discrete phase in an Eulerian gas flow. The coupling between droplet and gas flows are two-way, in which the heat and momentum exchanges affecting the gas flow are treated as source/sink terms in the fluid equations. The droplet models were employed a gas atomisation process for metal powder production and good agreement is achieved with the results in open literature. The model results further confirm that thermal history of particles is strongly dependent on initial droplet size. Large droplets will not go through undercooling while small droplets have identifiable stages of undercooling, unclearation and recalescence. The predictions demonstrate that droplets have very similar profiles during gas atomisation and the major factor influencing the atomisation and solidification process of droplets are in-flight distance. (C) 2007 Elsevier B.V. All rights reserved.
机译:在用于粉末生产的雾化过程中,金属滴在完全固化之前先经过过冷,复光,包晶和分离固化。雾化过程中的液滴破裂使冷却过程更加复杂。本文介绍了一个在一次计算中将冷却和破裂结合在一起的数值模型。液滴的动态历史被解析为欧拉气流中的离散相。液滴和气流之间的耦合是双向的,其中影响气流的热量和动量交换在流体方程中被视为源/汇项。液滴模型在金属粉末生产中采用了气体雾化工艺,并且在公开文献中的结果与该模型取得了很好的一致性。模型结果进一步证实了颗粒的热历史在很大程度上取决于初始液滴的大小。大液滴不会经历过冷,而小液滴则具有可识别的过冷,清除和重新发亮阶段。这些预测表明,液滴在气体雾化过程中具有非常相似的轮廓,影响液滴雾化和固化过程的主要因素是飞行距离。 (C)2007 Elsevier B.V.保留所有权利。

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