液体弹性对管内瞬态空化气泡的影响

IF 4.1 2区 工程技术 Q1 MECHANICS
Zhichao Wang, Peng Xu, Zhigang Zuo, Shuhong Liu
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引用次数: 0

摘要

我们通过实验和理论研究了液体弹性对封闭在管中的瞬态空化气泡的影响。在实验中,我们使用管式静止装置在管底附近用各种聚环氧乙烷溶液产生空化气泡。我们的实验表明,气泡动力学,尤其是最大气泡长度,受到液体弹性的显著影响。我们建立了一个液柱双振荡器模型来解释实验结果,并预测更大范围内的气泡动力学。最后,我们提出空化数 Ca2 和 prR/k 的倒数决定了液柱分离的状态,其中 pr 是参考压力,R 是管半径,k 是液柱的 "刚度系数"。我们的工作提供了粘弹性液体中大圆柱形空化气泡在瞬态过程中的动态定量比例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of liquid elasticity on transient cavitation bubbles in the tube
We investigate the effect of liquid elasticity on the transient cavitation bubbles confined in a tube both experimentally and theoretically. In experiments, the tube-arrest apparatus is used to generate cavitation bubbles near the tube bottom with various polyethylene oxide solutions. Our experiments show that bubble dynamics, particularly the maximum bubble length, are significantly influenced by liquid elasticity. We establish a double oscillator model for the liquid column to explain the experimental results and predict the bubble dynamics over a broader range. Finally, we propose that the reciprocal of the cavitation number Ca2 and prR/k determine the regimes of the liquid column separation, where pr is the reference pressure, R is tube radius, and k is the “stiffness coefficient” of the liquid column. Our work provides a quantitative scaling of the dynamics of large cylindrical cavitation bubbles in viscoelastic liquids during the transient process.
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来源期刊
Physics of Fluids
Physics of Fluids 物理-力学
CiteScore
6.50
自引率
41.30%
发文量
2063
审稿时长
2.6 months
期刊介绍: Physics of Fluids (PoF) is a preeminent journal devoted to publishing original theoretical, computational, and experimental contributions to the understanding of the dynamics of gases, liquids, and complex or multiphase fluids. Topics published in PoF are diverse and reflect the most important subjects in fluid dynamics, including, but not limited to: -Acoustics -Aerospace and aeronautical flow -Astrophysical flow -Biofluid mechanics -Cavitation and cavitating flows -Combustion flows -Complex fluids -Compressible flow -Computational fluid dynamics -Contact lines -Continuum mechanics -Convection -Cryogenic flow -Droplets -Electrical and magnetic effects in fluid flow -Foam, bubble, and film mechanics -Flow control -Flow instability and transition -Flow orientation and anisotropy -Flows with other transport phenomena -Flows with complex boundary conditions -Flow visualization -Fluid mechanics -Fluid physical properties -Fluid–structure interactions -Free surface flows -Geophysical flow -Interfacial flow -Knudsen flow -Laminar flow -Liquid crystals -Mathematics of fluids -Micro- and nanofluid mechanics -Mixing -Molecular theory -Nanofluidics -Particulate, multiphase, and granular flow -Processing flows -Relativistic fluid mechanics -Rotating flows -Shock wave phenomena -Soft matter -Stratified flows -Supercritical fluids -Superfluidity -Thermodynamics of flow systems -Transonic flow -Turbulent flow -Viscous and non-Newtonian flow -Viscoelasticity -Vortex dynamics -Waves
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