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TEMPORAL EFFECT AND TRANSIENT SIMULATION OF THIN LIQUID FILM IN MICRO CHANNELS

机译:微通道中薄液膜的时间效应和瞬态模拟

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摘要

The evaporation and heat transfer of thin liquid film are crucial factors affecting on the heat transfer performance of boiling bubbles or slugs. For boiling in micro-channels, the flash evaporation of the liquid film may give rise to boiling instability, and the dry-out of the film leads to serious deterioration of the heat transport. The thin liquid film has multi-scale transitions, and hence the phase change and fluid dynamics need to be solved by special governing equations and numerical algorithm. The numerical studies to date have solved the steady state distribution of the film, but the difficulty consists in the transient simulation of time-variant liquid films. In the present study, unsteady form governing equations are developed. With inclusion of the temporal terms, we conducted transient simulations for flat liquid films formed during the flow boiling in micro-channels. The model predicts the developing of drying spot during growth of elongated bubbles. The results show that the film thickness and distribution change quickly in a growth period, which are functions of the heat flux, mass flow rate and the other parameters. The quantitative assessment of these effects helps to clarify the mechanism of boiling instability and the conditions for the occurrence of critical heat flux (CHF). The simulation needs special numerical scheme for time marching and stabilization treatment for the nonlinear terms, where the numerical accuracy and the significance of the temporal effects are also discussed.
机译:液体薄膜的蒸发和传热是影响沸腾气泡或团块传热性能的关键因素。对于在微通道中沸腾,液膜的闪蒸可能引起沸腾的不稳定性,并且膜的变干导致热传递的严重恶化。液体薄膜具有多尺度的过渡,因此需要通过特殊的控制方程和数值算法来解决相变和流体动力学问题。迄今为止的数值研究已经解决了膜的稳态分布,但是困难在于时变液体膜的瞬态模拟。在本研究中,开发了非稳态形式控制方程。考虑到时间项,我们对在微通道中沸腾过程中形成的扁平液体膜进行了瞬态模拟。该模型预测在长气泡生长期间干燥点的发展。结果表明,薄膜厚度和分布在生长期迅速变化,这是热通量,质量流量和其他参数的函数。对这些影响的定量评估有助于阐明沸腾不稳定性的机制以及临界热通量(CHF)发生的条件。该仿真需要特殊的数值方案,用于非线性项的时间行进和稳定化处理,其中还讨论了数值精度和时间效应的重要性。

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