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首页> 外文期刊>Journal of Materials Science >SOLIDIFICATION BEHAVIOUR OF PD-RH DROPLETS DURING SPRAY ATOMIZATION
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SOLIDIFICATION BEHAVIOUR OF PD-RH DROPLETS DURING SPRAY ATOMIZATION

机译:喷涂雾化过程中PD-RH液滴的凝固行为

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Solidification microstructure in spray-atomized Pd-10 wt % Rh powders using high-pressure gas atomization was studied. The solidification cooling rate and the solidification front velocity were investigated using a transient heat-transfer finite element method. Two different atomization gases, nitrogen and helium, were considered in the modelling studies. On the basis of the results obtained, it was found that gas atomization using helium gas led to solidification cooling rates and solidification front velocities which were two times higher than those obtained using nitrogen gas. Moreover, the cooling rate and the solidification front velocity increased with decreasing powder size for both types of atomization gas. The numerically estimated solidification front velocity using finite element analysis for nitrogen gas atomization was found to be smaller than the analytically determined absolute stability velocity that is required to promote a segregation-free microstructure. This was noted to be consistent with the segregated microstructure that was experimentally observed in nitrogen gas atomized powders. In the case of helium gas atomization, however, the increased cooling rate and solidification front velocity are anticipated to promote the formation of a segregation-free microstructure in the gas-atomized powders. [References: 22]
机译:研究了高压气体雾化雾化Pd-10 wt%Rh粉末中的凝固组织。使用瞬态传热有限元方法研究了凝固冷却速率和凝固前沿速度。在建模研究中考虑了两种不同的雾化气体,氮气和氦气。根据获得的结果,发现使用氦气的气体雾化导致凝固冷却速率和凝固前沿速度,这是使用氮气获得的结果的两倍。而且,对于两种类型的雾化气体,冷却速度和凝固前沿速度随着粉末尺寸的减小而增加。发现使用有限元分析对氮气雾化进行的数值估算凝固前沿速度小于促进无偏析微观结构所需的分析确定的绝对稳定速度。注意到这与在氮气雾化粉末中实验观察到的偏析微观结构是一致的。然而,在氦气雾化的情况下,预期增加的冷却速率和凝固前沿速度将促进在气雾化的粉末中形成无偏析的微观结构。 [参考:22]

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