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Modeling and characterization of metal droplets generation by using a pneumatic drop-on-demand generator

机译:使用气动按需滴落发生器对金属液滴产生进行建模和表征

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A 2D axisymmetric model has been proposed to study the mechanism of the droplet generation by using a pneumatic drop-on-demand (DOD) generator. A proprietary pneumatic DOD generator was also applied to conduct droplet generation experiments. The validity of the proposed model was verified through the simulation results of droplet pattern, breakup length distance and droplet diameter, which were in good agreement with the experimental ones. Theoretical studies were conducted to characterize the metal droplet generation using pneumatic DOD technique. Theoretical analyses show that metal droplets break away from jets in front of the sphere ends due to the increase of the capillary disturbance at a very small Ohnesorge number (Oh < 0.01). This capillary disturbance is caused by the action of surface tension. Shapes of droplets do not significantly change because of the relatively low pressure inside droplets. The droplet diameter decreases when the nozzle diameter decreases to 100 μm, while the ratio of droplet diameter to nozzle diameter increases rapidly. An external disturbance with high frequency should be introduced to accelerate the metal jet breakup for further decreasing the droplet size. This work offers a useful guide for choosing appropriate parameters to generate metal droplets using pneumatic DOD technique.
机译:提出了二维轴对称模型,以研究使用气动按需滴落(DOD)发生器产生液滴的机理。专有的气动DOD发生器也被用于进行液滴产生实验。通过液滴模式,破碎长度距离和液滴直径的仿真结果验证了所提模型的有效性,与实验结果吻合良好。进行了理论研究以表征使用气动DOD技术产生的金属滴。理论分析表明,由于在极小的Ohnesorge数下(Oh <0.01),毛细扰动的增加,金属液滴从球体前端的射流中脱离。这种毛细管干扰是由表面张力的作用引起的。由于液滴内部的压力较低,因此液滴的形状不会显着变化。当喷嘴直径减小至100μm时,液滴直径减小,而液滴直径与喷嘴直径之比迅速增大。应该引入一个高频外部干扰来加速金属射流的破裂,以进一步减小液滴的尺寸。这项工作为选择适当的参数以使用气动DOD技术生成金属滴提供了有用的指导。

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