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Fluidics in an emptying bottle during breaking and making of interacting interfaces

机译:在破碎和制作互动界面时,清空瓶中的流体

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摘要

An experimental effort has been reported in the present study analyzing the fluidics during the emptying of a bottle. The viscosity of the containing liquid and the orientation of the bottle while emptying are varied to obtain different emptying modes. Stages during the emptying of a vertical upended and an inclined bottle have been demarcated based on prompt flow features. Fluidic phenomena such as formation and pinch-off of an encapsulated bubble, ejector jet, flooding, and stratification have been observed in a vertically upended bottle. The rise velocity, collapse dynamics, and growth rate of the bubble at the bottle mouth are affected by the angle of inclination and mainly viscosity of the emptying liquid. Two distinct bottle emptying modes have been identified in one of which the discharge rate is increased due to a high-frequency pinch-off of air bubbles inside the bottle and in another mode due to an increase in the volume of the pinched-off bubble at a comparatively lower frequency. The interaction of dominant forces during the emptying process has been established by quantifying Reynolds number, Weber number, and Bond number. For all emptying liquids, bottle emptying time reduces linearly up to a critical angle of inclination, theta(crit) similar to 20 degrees, and further follows an asymptote. We hypothesize that the transition between the linear regime and the asymptotic regime is due to the saturation of the voidage of the air at the cylindrical section of the bottle mouth. Furthermore, the geometry of the bottle also facilitates the growth rate of the bubble inside the bottle at theta(crit).
机译:实验工作已经报道在本研究中的瓶子的排空过程中分析流体。含液体的粘度和瓶子的同时排空取向变化以获得不同的排空模式。基于提示流动特征的垂直颠覆和倾斜瓶的排空过程中的阶段已被划界。流体现象,如形成与夹断封装的气泡,喷射器喷射,洪水和分层已在竖直颠倒瓶子被观察到。的上升速度,塌陷动力学,并在瓶口的气泡的增长速度是通过倾斜角和主要排空液的粘度的影响。两个不同的瓶排空模式已经在一个其中的放电率会由于增大到高频夹断空气的瓶子里,在另一种模式的气泡由于增加的体积被确定的夹断气泡在相对较低的频率。主导力量在排空过程中的相互作用已经通过量化雷诺数,韦伯数和Bond数确定。对于所有排空液体,瓶排空时间减少线性高达倾斜的临界角,θ-(爆击)类似度至20度,并且进一步如下渐近线。我们假设线性政权和渐近政权之间的过渡是由于空气的空隙率在瓶口的圆柱形部分饱和。此外,瓶子的几何形状还便于瓶内的气泡的生长速率在THETA(击)。

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  • 来源
    《Physics of fluids》 |2020年第4期|共23页
  • 作者

    Rohilla Lokesh; Das Arup Kumar;

  • 作者单位

    Indian Inst Technol Roorkee Dept Mech &

    Ind Engn Roorkee 247667 Uttar Pradesh India;

    Indian Inst Technol Roorkee Dept Mech &

    Ind Engn Roorkee 247667 Uttar Pradesh India;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
  • 关键词

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