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Emanating Jets As Shaped by Surface Tension Forces

机译:由表面张力形成的射流

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摘要

We show that emanating jets can be regarded as growing liquid towers, which are shaped by the twofold action of surface tension: first the emanated fluid is being accelerated back by surface tension force, herewith creating the boundary conditions to solve the shape of the liquid tower as a solution of an equation mathematically related to the hydrostatic Young−Laplace equation, known to give solutions for the shape of pending and sessile droplets, and wherein the only relevant forces are gravity g and surface tension γ. We explain that for an emanating jet under specific constraints all mass parts with density ρ will experience a uniform time dependent acceleration a(t). An asymptotic solution is subsequently numerically derived by making the corresponding Young−Laplace type equation dimensionless and by dividing all lengths by a generalized time dependent capillary length λc(t) = . The time dependent surface tension γ(t) can be derived by measuring both time dependent acceleration a(t) and time dependent capillary length λc(t). Jetting experiments with water and coffeeshow that the dynamic surface tension behavior according to the emanatingjet method and with the well-known maximum bubble pressure methodare the same, herewith verifying the proposed model.
机译:我们显示出射流可以看作是不断增长的液塔,它是由表面张力的双重作用形成的:首先,射出的流体在表面张力的作用下被加速,从而创造了解决液塔形状的边界条件作为数学上与静液压Young-Laplace方程相关的方程的解,已知可以给出悬垂液滴和无柄液滴的形状的解,并且其中唯一相关的力是重力g和表面张力γ。我们解释说,对于在特定约束下的射流,所有密度为ρ的质量部分将经历均匀的时间依赖性加速度a(t)。随后通过使相应的Young-Laplace型方程无量纲并且将所有长度除以广义的与时间相关的毛细管长度λc(t)=,在数值上得出渐近解。随时间变化的表面张力γ(t)可以通过测量随时间变化的加速度a(t)和随时间变化的毛细管长度λc(t)得出。用水和咖啡进行喷射实验结果表明,动态表面张力行为根据发射喷射法和众所周知的最大气泡压力法相同,因此验证了所提出的模型。

著录项

  • 期刊名称 ACS AuthorChoice
  • 作者

    Cees J. M. vanRijn; *;

  • 作者单位
  • 年(卷),期 -1(34),46
  • 年度 -1
  • 页码 13837–13844
  • 总页数 8
  • 原文格式 PDF
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