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Numerical study on the nonlinear dynamics of the ligament formation and its breakup of a spherical droplet induced by Faraday instability

机译:法拉第稳定性韧带形成的非线性动力学的数值研究及其分解

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Faraday instability is an important mechanism for the secondary atomization of a spherical liquid droplet. In this paper, a numerical simulation model was established to study the nonlinear dynamics of the ligament formation and its breakup of a spherical droplet caused by Faraday instability. A set of simulations were firstly carried out to find out the optimum grid size to accurately capture the gas-liquid interface. Then the simulation model was validated by comparing the simulated results with the experimental ones under the same conditions. Based on the simulation model built in this paper, a series of simulations were conducted to study the ligament formation mechanism of a spherical droplet placed on a vertically vibrating plate, which provides a sinusoidal inertial acceleration to the droplet. By analyzing the microscopic information such as the pressure field, velocity field and surface wave displacement, it was found that the ligament formation and breakup were actually the results of the interaction of inertial force and surface tension. Ligament formation and breakup can also be seen as a process of absorbing energy, storing energy, converting energy, delivering energy and erupting. When the inertial force does positive work on a certain surface wave, the kinetic energy of this surface wave increases. Under the action of surface tension, the kinetic energy is transformed into pressure potential energy. After a while, the pressure potential energy is converted back to kinetic energy, combined with the positive work imposed on the surface wave by inertial force. The kinetic energy of the surface wave further increases and part of the kinetic energy is passed to the adjacent surface waves. The adjacent surface waves have the similar process of energy conversion and transmission. After several cycles, more and more energy is absorbed by the surface wave from the inertial force, and the displacement amplitude of the surface wave becomes larger and larger. Finally, a liquid ligament is formed from the droplet surface. When the velocity difference between the top and bottom of the ligament is large enough, the ligament breaks and atomization OMITS. (C) 2019 Elsevier Ltd. All rights reserved.
机译:法拉第不稳定性是球形液滴的二次雾化的重要机制。本文建立了一种数值模拟模型,研究了法拉第不稳定引起的韧带形成的非线性动力学及其分离。首先进行了一组模拟,以找出最佳网格尺寸,以准确捕获气液界面。然后通过将模拟结果与在相同条件下的实验结果进行比较来验证模拟模型。基于本文建立的仿真模型,进行了一系列模拟,以研究放置在垂直振动板上的球形液滴的韧带形成机构,其为液滴提供正弦惯性加速度。通过分析诸如压力场,速度场和表面波位移的微观信息,发现韧带形成和分离实际上是惯性力和表面张力的相互作用的结果。韧带形成和分手也可以被视为吸收能量,储存能量,转化能量,提供能量和爆发的过程。当惯性力对某个表面波进行正面工作时,该表面波的动能增加。在表面张力的作用下,动能转化为压力势能。之后,将压力电位能量转换回动能,结合惯性力施加在表面波上的正工作。表面波的动能进一步增加,并且部分动能的一部分被传递到相邻的表面波。相邻的表面波具有类似的能量转换和变速器的过程。经过几个循环,从惯性力的表面波吸收了越来越多的能量,并且表面波的位移幅度变大并且更大。最后,从液滴形成液体韧带。当韧带顶部和底部之间的速度差足够大,韧带破裂和雾化省略。 (c)2019年elestvier有限公司保留所有权利。

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