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多液滴倾斜冲击薄液膜的数值研究。

Numerical investigation of oblique impact of multiple drops on thin liquid film.

机构信息

Department of Mechanical Engineering, University of Louisville, Louisville, KY 40292, USA.

Department of Mechanical Engineering, University of Louisville, Louisville, KY 40292, USA.

出版信息

J Colloid Interface Sci. 2018 Nov 15;530:586-594. doi: 10.1016/j.jcis.2018.05.107. Epub 2018 May 30.

Abstract

HYPOTHESIS

When multiple drops impact on a thin liquid film, the interaction dynamic between two impinging drops is prominent. High-speed (>50 m/s) oblique impacts of drops on a liquid film result in asymmetrical splashing patterns and further complicate the phenomenon. To understand the interaction between injected crowns from splashing, numerical simulations are very useful to study the flow behaviors.

SIMULATIONS

Three-dimensional simulations are performed to investigate the impact of two adjacent drops on a thin liquid layer using a multiphase flow solver. The solver solves Navier-Stokes equations on Cartesian grids and uses the moment-of-fluid method for interface reconstruction. The numerical code is first validated with three experimental studies and good agreements are obtained. Simulations of oblique impacts of two adjacent drops are then conducted for low-speed and high-speed impacts.

FINDINGS

The numerical results show that strong interaction occurs when the crowns formed by two adjacent drops interfere with each other. For low-speed impact, drops deposit on to the liquid film with short and thick crater rims formed and the interaction region is a superposition of the crater edges. For high-speed impact, crowns break up to form splashing and the interaction behavior becomes complicated.

摘要

假设

当多个液滴冲击到一个薄液膜上时,两个撞击液滴之间的相互作用动力学就会变得非常显著。高速(>50 m/s)斜向液滴冲击薄液膜会导致非对称的喷溅模式,并进一步使现象复杂化。为了理解喷溅产生的注入液冠之间的相互作用,数值模拟对于研究流动行为非常有用。

模拟

采用多相流求解器对两个相邻液滴在薄液层上的冲击进行了三维模拟。该求解器在笛卡尔网格上求解纳维-斯托克斯方程,并使用流体力学方法进行界面重建。数值代码首先通过三个实验研究进行了验证,得到了很好的一致性。然后,对两个相邻液滴的斜向冲击进行了低速和高速冲击的模拟。

发现

数值结果表明,当两个相邻液滴的液冠相互干扰时,会发生强烈的相互作用。对于低速冲击,液滴沉积在液体薄膜上,形成短而厚的火山口边缘,相互作用区域是火山口边缘的叠加。对于高速冲击,液冠会破裂形成喷溅,相互作用行为变得复杂。

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