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首页> 外文期刊>Particle & Particle Systems Characterization: Measurement and Description of Particle Properties and Behavior in Powders and Other Disperse Systems >The Simulation of Electrostatic Spray Painting Process with High-Speed Rotary Bell Atomizers.Part II:External Charging
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The Simulation of Electrostatic Spray Painting Process with High-Speed Rotary Bell Atomizers.Part II:External Charging

机译:高速旋转钟形雾化器静电喷涂工艺的模拟。第二部分:外部充电

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The present contribution summarizes investigations aiming to completely model the electrostatically sup- ported spray painting process with high-speed rotary bells by means of CFD.In this part II,so-called external charging atomizers,where high voltage is applied to emitting electrode needles,are considered.Here,char- ging of the droplets takes place due to free ions pro- duced from corona discharge at the electrodes.Part I [1] dealt with direct charging atomizers,where potential is applied directly to the rotating bell.The commercial CFD-code Fluent has been extended to account for the electrostatic field and the space charge,effect due to the ions.Here,a model for the time-depen- dent and inhomogeneous field charging of the droplets was applied.Furthermore,the direct interaction between the ion current and the flow field,i.e.,the so-called ion wind,could be calculated.As input condi-tions,the airflow from the shaping air orifices and mea-sured droplet sizes close to the bell edge using Fraun- hofer diffraction were taken.In general,numerical and experimental results are in good agreement,confirming the applicability of the chosen physical approach.This is especially true for the final film thickness on the target and the transfer effi-ciency,i.e.,the amount of paint solids that finally depos-ited on the target.In the near future the calculations must be extended to true unsteady simulations including the dynamic meshing procedure.
机译:本文稿总结了旨在通过CFD利用高速旋转钟完全模拟静电支持的喷涂过程的研究。在第二部分中,所谓的外部充电雾化器将高压施加到发射电极针上,在这里,液滴的充电是由于电极上电晕放电所产生的游离离子而发生的。第一部分[1]涉及直接充电的雾化器,其电势直接施加到旋转的钟形罩上。 CFD代码Fluent已扩展,以解决静电场和离子对空间电荷的影响。在此,应用了液滴时空和非均匀电场充电的模型。此外,直接相互作用可以计算出离子流与流场之间的距离,即所谓的离子风。作为输入条件,来自成形空气孔的气流和所测量的液滴尺寸接近钟形边缘一般而言,数值和实验结果吻合良好,证实了所选择的物理方法的适用性。对于靶材上的最终膜厚和转移效率,即:在不久的将来,必须将计算扩展到真正的非稳态模拟,包括动态网格划分程序。

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