蒸发/凝结薄膜的三维长波不稳定性

IF 1.8 Q3 MECHANICS Fluids Pub Date : 2024-06-14 DOI:10.3390/fluids9060143
Weiyang Jiang, Ruiqi Huang, Qiang Yang, Zijing Ding
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引用次数: 0

摘要

本文探讨了三维蒸发/冷凝薄膜沿加热/冷却斜面下落时的稳定性和动力学。本文没有使用 Hertz-Knudsen-Langmuir 关系,而是采用了更全面的相变边界条件。根据本尼式方程推导出一个非线性微分方程,其中考虑到了重力、能量传输、蒸汽反冲、有效压力和蒸发。通过线性稳定性分析,研究了有效压力和蒸汽反冲对不稳定性的影响。结果表明,跨向扰动会放大蒸汽反冲的失稳效应,从而导致不稳定。沿界面的能量传输对系统的稳定性几乎没有影响,但会影响线性波速。非线性演化表明,与蒸汽反冲效应相反,有效压力可以提高稳定性并延迟薄膜破裂。自相似解表明,在蒸发和蒸汽反冲的作用下,最小薄膜厚度分别以 (tr-t)1/2 和 (tr-t)1/3 的形式减小。
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Three-Dimensional Long-Wave Instability of an Evaporation/Condensation Film
This paper explores the stability and dynamics of a three-dimensional evaporating/condensing film while falling down a heated/cooled incline. Instead of using the Hertz–Knudsen–Langmuir relation, a more comprehensive phase-change boundary condition is employed. A nonlinear differential equation is derived based on the Benny-type equation, which takes into account gravity, energy transport, vapor recoil, effective pressure, and evaporation. The impact of effective pressure and vapor recoil on instability is studied using a linear stability analysis. The results show that spanwise perturbations can amplify the destabilizing effects of vapor recoil, leading to instability. Energy transport along the interface has almost no effect on the stability of the system, but it does influence the linear wave speed. Nonlinear evolution demonstrates that, in contrast to the vapor recoil effect, effective pressure can improve stability and delay film rupture. The self-similar solution demonstrates that the minimal film thickness decreases as (tr−t)1/2 and (tr−t)1/3 under the dominance of evaporation and vapor recoil, respectively.
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来源期刊
Fluids
Fluids Engineering-Mechanical Engineering
CiteScore
3.40
自引率
10.50%
发文量
326
审稿时长
12 weeks
期刊最新文献
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