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Computational studies of pair wise interactions between drops and the dynamics of concentrated emulsions at finite inertia.

机译:液滴与有限惯性下浓缩乳液动力学之间的成对相互作用的计算研究。

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摘要

A computational study of pair-wise interactions between drops and the dynamics of concentrated emulsion is undertaken using a three-dimensional front-tracking finite difference method. The study is motivated by numerous industrial and domestic applications of multi-fluid flow.; We first investigate the effects of inertia on pair-wise interaction between drops in a Newtonian system. It is seen that at high Re, increase in the initial cross-stream separation between the two interacting drops slightly increases the drops deformation. In addition, it is observed that if the separation position of the two interacting drops along the flow direction is so small that the drops can slide past each other even at high Re, increase in Re leads to an increase in the drops' lateral displacement after separation. However, if the separation position of the two interacting drops is more than twice the undeformed radius of the drops, the drops may not be able to slide past each other if Re is sufficiently large. The deformability of the drops also affects their lateral displacement. We observe that deformable drops are not able to slide past each other under the same conditions where drops with very low Ca can slide past each other. It appears that the flow modification caused by the drops deformation creates a downward force on the left drop.; Next, we examine the effects of inertia on drop dynamics in a concentrated emulsion. We observe that the effects of inertia on weak hydrodynamic interaction at low dispersed phase volume fraction do not result in increased volume-averaged drop deformation. However, for concentrated emulsions, interaction between drops at increased Re leads to an increase in volume-averaged drop deformation especially when Ca of the drops is low. A single drop tends to rotate towards the vertical direction at increased Re. However, interactions between drops suppress this tendency.; Finally, we investigate the effects of viscoelasticity on interactions between drops. We notice that the interaction between viscoelastic drops is similar to that between Newtonian drops. However, we observe that the interaction in the case of Newtonian drops in a viscoelastic matrix is different from that of Newtonian fluids. Viscoelastic stresses in the matrix-phase viscoelastic system inhibit the drops' lateral displacement and cause the drops to align more with the flow direction. Similar to what has been observed in single-drop deformation, the De of the matrix-phase viscoelasticity has non-monotonic effects on the drops' deformation when the drops are aligned with each other along the compressional quadrant of the shear flow.
机译:使用三维前跟踪有限差分方法进行了液滴与浓乳液动力学之间的成对相互作用的计算研究。这项研究是受多种流体在工业和家庭应用的推动。我们首先研究惯性对牛顿系统中液滴之间成对相互作用的影响。可以看出,在高Re时,两个相互作用的液滴之间初始横流分离的增加会稍微增加液滴的变形。另外,观察到如果两个相互作用的液滴沿流动方向的分离位置太小以至于即使在高Re下液滴也可以彼此滑过,Re的增加导致液滴在之后的横向位移增加。分离。但是,如果两个相互作用的液滴的分离位置大于液滴未变形半径的两倍,则如果Re足够大,则液滴可能无法彼此滑过。液滴的可变形性也影响其横向位移。我们观察到,在钙含量非常低的液滴可以相互滑过的相同条件下,可变形液滴无法相互滑过。似乎由液滴变形引起的流动改变在左液滴上产生了向下的力。接下来,我们研究了惯性对浓缩乳液中液滴动力学的影响。我们观察到,在低分散相体积分数下,惯性对弱流体动力相互作用的影响不会导致体积平均液滴变形增加。然而,对于浓缩乳液,在增加的Re时,液滴之间的相互作用会导致体积平均液滴变形增加,尤其是当液滴的Ca低时。单个液滴趋向于以增加的Re向垂直方向旋转。然而,液滴之间的相互作用抑制了这种趋势。最后,我们研究了粘弹性对液滴之间相互作用的影响。我们注意到粘弹性液滴之间的相互作用类似于牛顿液滴之间的相互作用。但是,我们观察到在粘弹性基质中牛顿滴的相互作用与牛顿流体的相互作用不同。基质相粘弹性系统中的粘弹性应力会抑制液滴的横向位移,并导致液滴与流向更加对齐。类似于在单滴变形中观察到的情况,当液滴沿剪切流的压缩象限相互对齐时,基质相粘弹性De对液滴的变形具有非单调影响。

著录项

  • 作者

    Olapade, Peter Ojo.;

  • 作者单位

    University of Delaware.$bDepartment of Mechanical Engineering.;

  • 授予单位 University of Delaware.$bDepartment of Mechanical Engineering.;
  • 学科 Engineering Mechanical.; Physics Fluid and Plasma.
  • 学位 M.S.
  • 年度 2007
  • 页码 96 p.
  • 总页数 96
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;等离子体物理学;
  • 关键词

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