Mechanism and Modeling of Micro-Droplet Impact, Fragmentation, and Solidification

H. Zhang
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Abstract

New applications have been identified for thermal spraying using micro-droplets. Mechanisms of impact, fragmentation, and solidification developed for millimeter size droplets are no longer applicable for micro-droplets due to the significance of the surface tension and wall interaction. New fragmentation mechanisms and advanced numerical modeling are required to develop a better understanding of the transport phenomena for droplet spreading and solidification. In this paper, the existing fragmentation mechanisms have been reviewed, and a new mechanism is proposed. The proposed mechanism considers the effects of flow instability, wettability, surface roughness, surface chemistry, and moisture absorption. This mechanism has been incorporated into an advanced numerical model that consists of a multizone adaptive grid generation used for tracking the movement of the solidification interface and a curvilinear level-set method for capturing the movement of free surface. Impact, fragmentation, and solidification of a molybdenum micro-droplet has been simulated, and the fragmentation morphology has been predicted.
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微液滴撞击、破碎和凝固的机理与建模
利用微液滴进行热喷涂的新应用已经确定。由于表面张力和壁面相互作用的重要性,为毫米尺寸液滴开发的冲击、破碎和凝固机制不再适用于微液滴。为了更好地理解液滴扩散和凝固的传输现象,需要新的破碎机制和先进的数值模拟。本文对现有的破碎机制进行了综述,并提出了一种新的破碎机制。提出的机制考虑了流动不稳定性、润湿性、表面粗糙度、表面化学和吸湿性的影响。该机制已被纳入一个先进的数值模型,该模型由用于跟踪凝固界面运动的多区域自适应网格生成和用于捕获自由表面运动的曲线水平集方法组成。模拟了钼微液滴的冲击、破碎和凝固过程,并对其破碎形态进行了预测。
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