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Numerical Optimization of Quenching Efficiency and Particle Size Control in Flame Synthesis of ZrO2 Nanoparticles

机译:ZrO2纳米粒子火焰合成中淬火效率和粒度控制的数值优化

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摘要

The development of a new quenching design combining rapid cooling with an expansion for controlling the size of nanoparticles synthesized at industrial scale by flame spray pyrolysis was investigated. The design of the quenching device was supported by simulations using a coupled computational fluid dynamics-monodisperse aerosol model to reduce the size of the primary particles and their agglomerate diameters while conserving the production yield at the filter above the burner. The results showed that quenching the spray flame in an open environment led to lower production yield due to the negative velocity of quenching gas which diverted the particles to the bottom of reactor. An additional upstream air flow could help to increase the particle production yield at high air flow rates, while it had a negative effect on the penetration depth of quenching gas inside the main flame which resulted in higher flame heights. The new design showed that adding an enclosure around the burner and quenching ring can significantly increase the quenching efficiency and reduce the particle size. The technique to control the particle size was also studied in this paper.
机译:研究了新的淬火设计的发展,该设计结合了快速冷却和膨胀来控制通过火焰喷雾热解以工业规模合成的纳米颗粒的尺寸。通过使用耦合的计算流体动力学-单分散气溶胶模型进行模拟来支持淬火装置的设计,以减小初级颗粒的大小及其附聚体的直径,同时保留燃烧器上方过滤器的产量。结果表明,在空旷的环境中淬灭喷雾火焰会导致生产收率降低,这是由于淬灭气体的负速度使颗粒转移到反应器底部。额外的上游气流可以帮助提高高气流速率下的颗粒产量,同时对淬火气体在主火焰内部的渗透深度产生负面影响,从而导致更高的火焰高度。新设计表明,在燃烧器和淬火环周围增加一个外壳可以显着提高淬火效率并减小颗粒尺寸。本文还研究了控制粒径的技术。

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