液膜随气速振荡的线性稳定性

IF 0.1 4区 工程技术 Q4 ENGINEERING, AEROSPACE Aerospace America Pub Date : 2023-08-03 DOI:10.3390/aerospace10080691
Xiang-dong Deng, B. Shi, Yong Tang, Ning-fei Wang
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引用次数: 0

摘要

本文从理论上研究了声振荡作用下气体剪切液膜的线性不稳定性。在这项工作中,用气体的速度振荡来近似表征声振荡,用传导热流密度与蒸发热流密度的比值来表征传热传质。考虑到实际情况中热对流的影响远大于热传导的影响,引入修正因子使热流比在合理范围内。由于气体的振荡速度,出现了几个不稳定区,包括KHI区和参数不稳定区(PI)。速度振荡对KHI的影响与强迫频率有关。当强迫频率较大时,振荡速度幅值的增加促进了KHI,而当强迫频率较小时,振荡速度幅值的增加抑制了KHI。随着强迫振荡频率的增加,粘性耗散增强,从而抑制了PI。此外,当表面张力降低时,也会促进界面的不稳定性。增大气液密度比可使表面失稳。然而,当气液密度比较大时,传热传质对界面不稳定性的影响可以忽略不计。传热传质对PI和KHI有促进作用,而对不稳定区间压痕的破坏作用更大。值得注意的是,最大增长率的位置将是在最不稳定的区域。
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The Linear Stability of Liquid Film with Oscillatory Gas Velocity
The present study theoretically investigated the linear instability of a liquid film sheared by gas flow under acoustic oscillations. In this work, the velocity oscillations of the gas are used to approximately characterize the acoustic oscillations, and the ratio of the conduction heat flux to the evaporation heat flux is used to characterize the heat and mass transfer. Considering the much stronger impact of the heat convection than the heat conduction in practical cases, a correction factor is introduced to satisfy the heat flux ratio within a reasonable range. Because of the oscillatory velocity of gas, several unstable regions, involving the KHI region and the parametric instability (PI) region, appear. The impact of the velocity oscillations on the KHI is related to the forcing frequency. Increasing the oscillatory velocity amplitude promotes the KHI when the forcing frequency is large, while the KHI is restrained with the increase in the oscillatory velocity amplitude when the forcing frequency is small. Since the viscous dissipation is enhanced when the forcing oscillations frequency increases, the PI is suppressed. In addition, when the surface tension decreases, the interfacial instability is also promoted. Increasing the gas–liquid density ratio can destabilize the surface. However, the impact of the heat and mass transfer on the interfacial instability is neglectable as the gas–liquid density ratio is large. Furthermore, the heat and mass transfer have a promoting impact on the PI and KHI, while their destabilizing effect on the indentation between unstable regions is greater. It is significant to note that the location of the maximum growth rate would be in the most unstable region.
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来源期刊
Aerospace America
Aerospace America 工程技术-工程:宇航
自引率
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发文量
9
审稿时长
4-8 weeks
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