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Simulation of air-assisted spray penetration and deposition of discrete sizes of water droplets from field sprayer.

机译:空气辅助喷雾器的模拟和来自田间喷雾器的离散尺寸水滴的沉积。

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摘要

The computer model predictions of the velocity profiles of a jet in the presence of horizontal wind were in excellent agreement with the measured data. The vertical profile curves predicted from the plane jet theory and computer simulation were similar and agreed with the measured peak velocity discharged from a rectangular duct in still air.; At the same outlet power, air discharged at higher velocity and lower air flow rate from the outlet, deflects more in the downwind direction. The vertical velocity component dissipates at a higher rate than when the air is discharged at lower velocity and higher flow rate.; Field and laboratory studies have shown that droplet sizes with diameter less than 150 {dollar}mu{dollar}m are most effective for insect and fungus control. Dispersing pesticide solutions in smaller droplet diameters from field sprayers requires less total spray volume to obtain equivalent coverage, provided the droplets deposit on the intended target surfaces. this study shows that using an air jet ahead of the atomizer improves penetration and increases deposition efficiency of small droplets in the area directly underneath and downwind from the atomizer in horizontal winds with velocities up to 4 m/s. Without air-assistance droplets smaller than 100 {dollar}mu{dollar}m in diameter which primarily rely on gravitational force for transportation were very susceptible to drift or evaporation. Air jets were effective in directing the sprays downward in the intended spray area and improving spray penetration into canopies in the presence of horizontal winds up to 4 m/s.; Small droplets emitted from a line of atomizers along a boom directed downward by an air shield, could be expected to give high droplet deposition efficiencies with reduced drift under field condition.
机译:在水平风的作用下,射流速度分布的计算机模型预测与实测数据非常吻合。根据平面射流理论和计算机模拟预测的垂直轮廓曲线相似,并且与在静止空气中从矩形风管排放的测得峰值速度一致。在相同的出口功率下,以较高的速度和较低的空气流速从出口排出的空气在顺风方向偏转更大。垂直速度分量的耗散率要高于空气以较低速度和较高流量排放时的耗散率。现场和实验室研究表明,直径小于150 {μm}美元的液滴尺寸对于控制昆虫和真菌最为有效。只要液滴沉积在目标目标表面上,就可以从田间喷雾机以较小的液滴直径分散农药溶液,从而需要较少的总喷雾量即可获得相等的覆盖率。这项研究表明,在速度高达4 m / s的水平风中,在雾化器之前使用空气喷射器可提高穿透力并提高小雾滴在雾化器正下方和顺风区域的沉积效率。如果没有主要依靠重力进行运输的直径小于100 {μm}美元的空气辅助液滴非常容易漂移或蒸发。在水平风速高达4 m / s的情况下,空气喷射器可有效地将喷雾向下引导至预期的喷雾区域,并提高喷雾渗透到机盖中的能力。从一排雾化器沿着由气罩向下指向的喷杆喷出的小液滴,有望在现场条件下提供高液滴沉积效率,并减少漂移。

著录项

  • 作者

    Khdair, Adnan Ibraheem.;

  • 作者单位

    The Ohio State University.;

  • 授予单位 The Ohio State University.;
  • 学科 Engineering Agricultural.; Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1996
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 农业工程;机械、仪表工业;
  • 关键词

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