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Application of Electrostatic Inkjet Phenomena to Micro-Film Formation by Spraying Viscous Liquid from Multi-Nozzles

机译:静电喷墨现象在多喷嘴粘性液体喷涂微膜形成中的应用

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摘要

Micro spray mode of electrostatic inkjet has been examined experimentally for the application of precision film coating. Critical issues of this technology lie in productivity and jetting viscous liquid. The former is that the amount of liquid jetted from a single nozzle is too small to obtain sufficiently high coating speed. The latter is that the stable jetting window of viscous liquid is narrow and the distribution of the droplet is not uniform. To overcome the situation, a possibility of jetting viscous solution from multi-nozzles was investigated in this report. As results, jetting from seven nozzles made of stainless steel was fanned out toward the opposite plate electrode. By intentionally clogging the both end-nozzles and making them as electrodes, the direction was remedied and parallel jets were obtained. According to the increment of applied voltage, jetting mode was varied from dripping mode to stable cone-jet mode. Although the variation of jetting mode was qualitatively the same as that of a single nozzle, for the multi-nozzle the higher voltage was required to obtain the stable jetting mode. Calculated results suggested that the electric field at the tips of the multi-nozzles were lower than that of a single nozzle so that the much higher voltage was required to obtain the same family of jetting mode. From coating experiments on a drum it was demonstrated that the multi-nozzles with dummy electrodes at high applied voltage could jet well-oriented fine droplets to acquire thick and flat film, although the droplets were not uniform. It was confirmed that the coating speed was improved according to the number of the nozzles but the moreflowrate was indispensable to obtain thick film.
机译:对于精密薄膜涂层的应用,已经通过实验检查了静电喷墨的微喷模式。该技术的关键问题在于生产率和喷射粘性液体。前者是从单个喷嘴喷射的液体量太少而无法获得足够高的涂布速度。后者是粘性液体的稳定喷射窗口狭窄并且液滴的分布不均匀。为了克服这种情况,在本报告中研究了从多喷嘴喷射粘性溶液的可能性。结果,从七个由不锈钢制成的喷嘴的射流向对面的板状电极成扇形散开。通过故意堵塞两个末端喷嘴并将它们作为电极,可以修正方向并获得平行的喷嘴。根据施加电压的增加,喷射模式从滴落模式变为稳定的圆锥喷射模式。尽管喷射模式的变化在质量上与单个喷嘴相同,但对于多喷嘴,需要更高的电压才能获得稳定的喷射模式。计算结果表明,多喷嘴尖端的电场低于单个喷嘴的电场,因此获得相同的喷射模式族需要更高的电压。从在鼓上进行的涂层实验可以证明,在高施加电压下具有虚拟电极的多喷嘴可以喷射取向良好的细小液滴,以获得厚而平坦的薄膜,尽管这些液滴并不均匀。可以确认,随着喷嘴数的增加,涂布速度提高,但是获得厚膜必不可少。

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  • 会议地点 Minneapolis MN(US);Minneapolis MN(US);Minneapolis MN(US);Minneapolis MN(US)
  • 作者单位

    Department of Applied Mechanics and Aerospace Engineering, Waseda University, Shinjuku, Tokyo, Japan;

    Department of Applied Mechanics and Aerospace Engineering, Waseda University, Shinjuku, Tokyo, Japan;

    Department of Applied Mechanics and Aerospace Engineering, Waseda University, Shinjuku, Tokyo, Japan;

    Department of Applied Mechanics and Aerospace Engineering, Waseda University, Shinjuku, Tokyo, Japan;

    Department of Applied Mechanics and Aerospace Engineering, Waseda University, Shinjuku, Tokyo, Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 数字印刷;
  • 关键词

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