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ANALYSIS OF TAYLOR FLOW IN MICROCHANNELS BY THE PHASE FIELD METHOD

机译:相场法分析微通道中的泰勒流动。

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The present paper reports a comprehensive study on the numerical simulation of Taylor flow in microchannels by the phase field method. Additionally, a comparative study was also performed against an alternative volume of fluid model based on which the phase field method was found to be more advantageous in key aspects such as the absence of unphysical interfacial pressure oscillations and the ability to account for variations in the surface tension force and thus predict several bubble lengths under constant flow conditions while observing the physics of homogeneous two-phase flow. Different bubble formation mechanisms were simulated and compared against experimental findings in literature. The simulation of a thin liquid film at the channel wall was found to be limitation of most works pertaining to Taylor flow, including the present. This was ascribed to be more likely due to limited dimensional and spatial resolution as well as inaccurate contact angle dynamics rather than limitations of the modeling approach itself. The effect of wall adhesion was studied with respect to the flow and pressure field in the channel. A validation of the model was achieved through a favorable comparison of the numerically predicted gas void fraction and bubble lengths with existing models and correlations. On the whole, the phase field method was concluded to have improved predictive accuracy with respect to certain aspects as compared to conventional multiphase flow models.
机译:本文利用相场法对微通道中泰勒流动的数值模拟进行了全面的研究。此外,还针对替代体积的流体模型进行了比较研究,基于该模型,发现相场法在关键方面(例如,不存在非物理界面压力振荡以及能够解释表面变化的能力)更有利。张力,从而在恒流条件下预测几种气泡长度,同时遵守均相两相流的物理原理。模拟了不同的气泡形成机理,并将其与文献中的实验结果进行了比较。人们发现,在通道壁上对液体薄膜进行模拟是包括泰勒流在内的大多数工作的局限性。归因于尺寸和空间分辨率的限制以及接触角动力学的不准确,而不是建模方法本身的局限性,这更有可能。关于通道中的流场和压力场,研究了壁粘附的影响。通过将数值预测的气体空隙率和气泡长度与现有模型及相关性进行有利的比较,可以对模型进行验证。总体而言,与传统的多相流模型相比,相场法的结论是在某些方面具有更高的预测精度。

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