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首页> 外文期刊>International Journal of Heat and Mass Transfer >Heat transfer and melt dynamics of millimetric ice particles impacting a heated water bath
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Heat transfer and melt dynamics of millimetric ice particles impacting a heated water bath

机译:毫米波冰粒影响热水浴的传热和熔体动力学

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In metallic additive manufacturing using direct energy deposition, particles and melt pool undergo complex interactions, including particle impact, penetration, and melting. The spatio-temporal evolution of these processes dictates the solidified material microstructure and final workpiece quality. However, due to the opaqueness of metallic melt pools, in-situ visualization is nearly impossible. To model this system, we use high-speed imaging to investigate the heat transfer and melting dynamics of spherical ice particles (D approximate to 2 mm) impacting heated water baths of varying temperatures (23-70 degrees C) with velocities ranging from 0.8 to 2.1 m/s. To visualize the outflow of molten ice, representative of mixing and material homogeneity, the particles were colored with food dye. We show that after impact, molten liquid forms an annular plume travelling downwards in the bath, until hitting the bottom of the enclosure and expanding radially. Due to positive buoyancy forces, unmolten ice particles rise to the top of the water bath, where they fully melt. As temperatures increase, we observe random particle movement, indicating the presence of convective currents. Through video analysis, we examine the relationships between bath temperature, impact velocity, and heat transfer. As expected, increasing the bath temperature decreases the total melt time of the ice particle. Interestingly, the impact velocity has only a minor effect on the melting time. Using non-dimensional analysis, we derive an expression for the correlation between Nusselt and Stefan numbers. Insights from this work can be used to match characteristic time scales during additive manufacturing to tailor material properties. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在使用直接能量沉积的金属增材制造中,颗粒和熔池会经历复杂的相互作用,包括颗粒的撞击,渗透和熔化。这些过程的时空演变决定了凝固材料的微观结构和最终工件的质量。但是,由于金属熔池的不透明性,几乎不可能进行原位可视化。为了对该系统进行建模,我们使用高速成像技术来研究球形冰粒(D约2毫米)对温度变化范围为(0.8-0.8)的热水浴(23-70摄氏度)的传热和熔化动力学。 2.1 m / s。为了观察熔融冰的流出,代表混合和材料均匀性,用食用染料对颗粒进行着色。我们表明,撞击后,熔融液体形成环形羽状流,在浴槽中向下传播,直到撞到外壳底部并径向膨胀。由于正浮力,未融化的冰粒上升到水浴顶部,在那里它们完全融化。随着温度的升高,我们观察到了随机的粒子运动,表明存在对流。通过视频分析,我们检查了浴温,冲击速度和传热之间的关系。如预期的那样,提高浴温会减少冰粒的总融化时间。有趣的是,冲击速度对熔化时间的影响很小。使用无量纲分析,我们得出了Nusselt和Stefan数之间的相关性表达式。这项工作的见解可用于在增材制造过程中匹配特征时间尺度,以定制材料特性。 (C)2019 Elsevier Ltd.保留所有权利。

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