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Numerical simulations of droplet trajectories from an electrostatic rotary-bell atomizer.

机译:静电旋转钟式雾化器的液滴轨迹的数值模拟。

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摘要

Electrostatic spray coating (E-spray) is widely used for coating conductive substrates. The combination of a high-velocity focusing air, an imposed electric field and charged droplets, leads to higher transfer efficiency than that of conventional spray coating. In this thesis, a mathematical model of trajectories of droplets generated by a rotary-bell electrostatic atomizer is described which enables predictions of coating deposition rate patterns. A dilute spray assumption (i.e., no particle-particle interactions) allows modeling single droplet trajectories resulting from a balance of electrostatic force, drag and inertia. Atomization of liquid droplets is not modeled explicitly---instead an empirical correlation is used for the mean droplet size while individual droplet sizes and starting locations are determined using random distributions. The electrostatic field and droplet trajectories are strongly coupled and calculated iteratively with successive substitution and relaxation. Parametric studies on how bell voltage, bell rotation speed, and focusing air affect spray pattern, mass transfer efficiency, and droplet trajectories are presented. Simulated spray patterns are compared to those of physical experiments.For the parameter values considered in this thesis, most of the predicted sprays are hollow cones with negligible deposition near the center axis, deposition of a heavy ring surrounding the center and a tapering of thickness towards the outer edge of the substrate. In contrast, most of the experimental results display non-axisymmetric deposition patterns in the form of two lobes of coating. In addition, the experimental deposition patterns are relatively insensitive to any of the three primary parameters (i.e. bell rotation speed, bell voltage, or focusing air intensity). These results are not obtained with the simulations, which show a moderate trend between both uniformity and transfer efficiency, both of which are favored by high bell rotations speeds and lower voltages.
机译:静电喷涂(E-spray)广泛用于涂覆导电基材。高速聚焦空气,强加的电场和带电液滴的结合导致比传统喷涂更高的转移效率。在本文中,描述了由旋转钟形静电雾化器产生的液滴的轨迹的数学模型,该模型能够预测涂层沉积速率模式。稀释的喷雾假设(即,没有颗粒-颗粒相互作用)允许对由静电力,阻力和惯性的平衡产生的单个液滴轨迹进行建模。没有明确建模液滴的雾化-而是将经验相关性用于平均液滴大小,而使用随机分布确定单个液滴的大小和起始位置。静电场和液滴的轨迹紧密耦合,并通过连续的替换和松弛来迭代计算。提出了关于钟形电压,钟形转速和聚焦空气如何影响喷雾模式,传质效率和液滴轨迹的参数研究。将模拟的喷雾模式与物理实验的喷雾模式进行了比较。对于本论文中考虑的参数值,大多数预测的喷雾是空心锥体,其中心轴附近的沉积可忽略不计,中心附近有沉重的环沉积,并且朝向中心的厚度逐渐减小基板的外边缘。相比之下,大多数实验结果都以涂层两瓣的形式显示出非轴对称沉积图案。另外,实验沉积图案对三个主要参数(即钟形转速,钟形电压或聚焦空气强度)中的任一个相对不敏感。这些结果无法通过仿真获得,仿真显示出均匀性和传输效率之间存在适度的趋势,这两者都受到钟形转速高和电压低的影响。

著录项

  • 作者

    Colbert, Steven Anthony.;

  • 作者单位

    Drexel University.;

  • 授予单位 Drexel University.;
  • 学科 Engineering Chemical.Computer Science.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 184 p.
  • 总页数 184
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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