共流流体中剪切诱导液滴形成的一维数学模型

IF 2.2 3区 工程技术 Q2 MECHANICS
Darsh Nathawani, Matthew Knepley
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引用次数: 0

摘要

摘要剪切力引起的液滴形成在许多工业应用中都很重要,主要集中在液滴尺寸和捏合频率上。我们提出了一个描述剪切力对液滴界面演变影响的一维数学模型。本文的目的是利用提出的模型模拟共流体中的石蜡液滴,以估算不同流速下的液滴体积率。因此,本研究只关注滴流状态。该一维模型只有一个由界面上的力平衡产生的参数。该参数与剪切层厚度有关,因此受速度、粘度和表面张力等量的变化影响。本文介绍了使用非维数描述该参数与这些量的相关性。然后将模型与之前的计算和实验数据进行交叉验证。我们使用开源求解器工具包 PETSc,采用混合有限元离散法实现我们的模型。我们展示了液态石蜡在各种速度的快速气流下的模拟结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A one-dimensional mathematical model for shear-induced droplet formation in co-flowing fluids

A one-dimensional mathematical model for shear-induced droplet formation in co-flowing fluids

A one-dimensional mathematical model for shear-induced droplet formation in co-flowing fluids

Shear-induced droplet formation is important in many industrial applications, primarily focusing on droplet sizes and pinch-off frequency. We propose a one-dimensional mathematical model that describes the effect of shear forces on the droplet interface evolution. The aim of this paper is to simulate paraffin wax droplets in a co-flowing fluid using the proposed model to estimate the droplet volume rate for different flow velocities. Thus, the study focuses only on the dripping regime. This one-dimensional model has a single parameter that arises from the force balance on the interface. This parameter is related to the shear layer thickness and hence influenced by the change in quantities like velocity, viscosity, and surface tension. The correlation describing the dependence of the parameter on these quantities using non-dimensional numbers is presented. The model is then cross-validated with the previous computational and experimental data. We use PETSc, an open-source solver toolkit, to implement our model using a mixed finite element discretization. We present the simulation results for liquid paraffin wax under fast-moving airflow with a range of velocities.

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来源期刊
CiteScore
5.80
自引率
2.90%
发文量
38
审稿时长
>12 weeks
期刊介绍: Theoretical and Computational Fluid Dynamics provides a forum for the cross fertilization of ideas, tools and techniques across all disciplines in which fluid flow plays a role. The focus is on aspects of fluid dynamics where theory and computation are used to provide insights and data upon which solid physical understanding is revealed. We seek research papers, invited review articles, brief communications, letters and comments addressing flow phenomena of relevance to aeronautical, geophysical, environmental, material, mechanical and life sciences. Papers of a purely algorithmic, experimental or engineering application nature, and papers without significant new physical insights, are outside the scope of this journal. For computational work, authors are responsible for ensuring that any artifacts of discretization and/or implementation are sufficiently controlled such that the numerical results unambiguously support the conclusions drawn. Where appropriate, and to the extent possible, such papers should either include or reference supporting documentation in the form of verification and validation studies.
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