Evidence of stretching/moving sheet-triggered nonlinear similarity flows: atomization and electrospinning with/without air resistance

IF 4 3区 工程技术 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS International Journal of Numerical Methods for Heat & Fluid Flow Pub Date : 2024-07-26 DOI:10.1108/hff-04-2024-0254
Mustafa Turkyilmazoglu
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Abstract

Purpose

The purpose of this study is two-fold. First, it aims to differentiate the response of a stretching jet encountering a quadratic air resistance from the classical jet shape formed in a frictionless medium. Second, it investigates how the resulting jet forms with and without air resistance, seeking evidence that supports the similarity flows frequently studied for stretching/moving thin bodies under the boundary layer approximation.

Design/methodology/approach

This study extends the established electrohydrodynamic stretching jet theory, used to model electrospinning or jet printing in the absence of air resistance, to encompass the impact of the retarding force on the jet stretching in both the cone and final regimes before it impinges on a substrate.

Findings

A close examination of the nonlinear governing equations reveals that the jet rapidly thins near the nozzle because of the combined action of viscous and electrical forces. In this region, the exponentially decaying jet receives further support from the air resistance, resulting in a closer alignment with the observed experimental jet. This exponential decay, accelerated by the inversely quadratic speed of the liquid particles, serves as clear evidence for the existence of a similarity flow over an exponentially stretching sheet. Furthermore, in the final regime, the jet stretching exhibits an algebraic decay in the absence of air friction, while with air resistance, it decays exponentially to reach a limiting speed. In the former case, a square root dependence of the stretching jet speed leads to the emergence of a similarity flow over a thin stretching jet, while in the latter case, a Sakiadis’ similarity flow appears over a continuously moving flat surface.

Practical implications

The analysis goes beyond jet hydrodynamics, delving into the interplay of electrostatic forces (including Coulomb’s law) and quadratic air drag, drawing upon experimental data on glycerol liquid presented in earlier publications.

Originality/value

Finally, the asymptotic behavior of the stretching jet under the combined influence of electrostatic pull and its electric currents because of bulk conduction and surface convection is validated through a comprehensive numerical simulation of the nonlinear system.

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拉伸/移动薄片触发非线性相似性流动的证据:有/无空气阻力的雾化和电纺丝
目的 本研究有两个目的。首先,它旨在区分遇到二次空气阻力的拉伸射流与在无摩擦介质中形成的经典射流形状的响应。其次,研究在有空气阻力和无空气阻力情况下形成的射流是如何形成的,以寻求证据支持在边界层近似条件下经常研究的拉伸/移动薄体的相似流。设计/方法/途径 本研究扩展了已建立的电流体力学拉伸射流理论,该理论用于模拟无空气阻力情况下的电纺丝或射流打印,以涵盖在射流撞击基底之前,在锥形和最终状态下阻滞力对射流拉伸的影响。在这一区域,指数衰减的射流得到空气阻力的进一步支持,从而与观察到的实验射流更加接近。液体颗粒的反二次方速度加速了这种指数衰减,这清楚地证明了在指数伸展的薄片上存在相似性流动。此外,在最终状态下,在没有空气摩擦的情况下,射流拉伸呈现代数衰减,而在有空气阻力的情况下,则呈指数衰减,达到极限速度。在前一种情况下,拉伸射流速度的平方根依赖性导致在薄的拉伸射流上出现相似流,而在后一种情况下,在连续运动的平面上出现 Sakiadis 相似流。该分析超越了射流流体力学,深入研究了静电力(包括库仑定律)和二次空气阻力的相互作用,并借鉴了早期出版物中有关甘油液体的实验数据。独创性/价值最后,通过对非线性系统进行全面的数值模拟,验证了拉伸射流在静电拉力及其电流的综合影响下的渐近行为,这是因为体传导和表面对流造成的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
9.50
自引率
11.90%
发文量
100
审稿时长
6-12 weeks
期刊介绍: The main objective of this international journal is to provide applied mathematicians, engineers and scientists engaged in computer-aided design and research in computational heat transfer and fluid dynamics, whether in academic institutions of industry, with timely and accessible information on the development, refinement and application of computer-based numerical techniques for solving problems in heat and fluid flow. - See more at: http://emeraldgrouppublishing.com/products/journals/journals.htm?id=hff#sthash.Kf80GRt8.dpuf
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