液滴撞击大球面时扩散时间的数值研究:从物理分析到数据驱动的预测模型

IF 2.2 3区 工程技术 Q2 MECHANICS
Ikroh Yoon, Seungwon Shin, Damir Juric, Jalel Chergui
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引用次数: 0

摘要

铺展时间是指撞击液滴在固体表面达到最大润湿面积的时间,它在许多工程应用中,尤其是涉及热传导或化学反应的应用中起着至关重要的作用。虽然液滴的撞击动力学在不同的铺展状态下会因各种碰撞参数的不同而有显著差异,但人们仍然不清楚每种铺展状态下的铺展时间是如何变化的。在本研究中,我们系统地研究了液滴撞击大型球形目标时,在三种不同的铺展状态下,各种撞击参数(韦伯数、平衡接触角和欧内索尔格数)的铺展时间。在三种不同的展布状态下,详细分析了展布时间随撞击参数和基本物理机制的变化。研究结果表明,在三种不同的铺展状态下,铺展时间、适当的时间尺度、主要的冲击参数以及相关的物理行为都会发生显著的非线性变化。此外,我们还为每种机制提出了一个改进的扩散时间预测模型,该模型现在仅基于可控变量,并具有明确的形式。最后,还提出了一个数据驱动的预测模型,以表示三种扩散状态下扩散时间的复杂和非线性性质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Numerical investigation of spreading time in droplet impact with a large spherical surface: from physical analysis to data-driven prediction model

Numerical investigation of spreading time in droplet impact with a large spherical surface: from physical analysis to data-driven prediction model

Numerical investigation of spreading time in droplet impact with a large spherical surface: from physical analysis to data-driven prediction model

Spreading time, the time that an impacting droplet attains the maximum wetting area on a solid surface, plays a critical role in many engineering applications particularly where heat transfer or chemical reactions are involved. Although the impact dynamics of a droplet significantly differ across the different spreading regimes depending on various collision parameters, it still remains unclear how the spreading time changes for each spreading regime. In the present study, the spreading time during droplet impact on a large spherical target is systematically studied at the three different spreading regimes for a wide range of impact parameters (Weber number, equilibrium contact angle, and Ohnesorge number). The changes of spreading time depending on the impact parameters and underlying physical mechanisms are analyzed in detail at the level of three different spreading regimes. Our results show that the spreading time, proper time scales, dominant impact parameters and associated physical behaviors all significantly and non-linearly change across the three spreading regimes. An improved prediction model for the spreading time is also proposed for each regime, which is now based on only the controllable variables and has an explicit form. Finally, a data-driven prediction model is proposed to represent the complicated and non-linear nature of the spreading time broadly across the three spreading regimes.

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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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