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Evolution of flow patterns and the associated heat and mass transfer characteristics during flow boiling in mini-/micro-channels

机译:微通道/微通道中沸腾过程中流型的演变以及相关的传热和传质特性

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摘要

A three-dimensional numerical investigation of flow boiling in mini-/micro-channels is carried out using a coupled Level-set (LS)/Volume of Fluid (VOF) method (CLSVOF) in the present study. A phase change model based on the interfacial temperature gradient is implemented and the numerical approach is first validated by the experimental and numerical results in the literature. A fabricated cavity in lieu of the traditional methods of seed bubble or local superheat is treated as the nucleation site, where boiling occurs exclusively and periodic stream of single bubble emerges. The transitions of flow patterns from bubbly flow to slug flow and annual flow are observed, and the numerical wall temperatures agree with the experimental results. The growths of the radial diameter and axial length of vapor bubble are compared with the experimental data, and good agreement is found for the radial diameter while deviation is found for the axial length due to early coalescence of bubbles near the nucleation site. Meanwhile, the local heat transfer coefficients are found to be significantly influenced by the flow patterns. The variations of the local vapor qualities at five representative locations along the flow direction are also studied quantitatively and the fluctuations are found to be consistent with the local flow patterns. Finally, we present a numerical attempt on flow boiling with two nucleation sites, which shows a good potential of the present numerical approach to deal with the complicated flow boiling process. The information presented here is very useful to the design and operation of the mini-/micro-reactors. (C) 2016 Elsevier B.V. All rights reserved.
机译:在本研究中,使用耦合水平集(LS)/流体体积(VOF)方法(CLSVOF)进行了微通道/微通道中流动沸腾的三维数值研究。建立了基于界面温度梯度的相变模型,并通过文献中的实验和数值结果对数值方法进行了验证。代替传统的种子气泡或局部过热方法的预制腔被视为成核位点,在那里仅发生沸腾,并且出现单个气泡的周期性流。观察到了从气泡流向团状流和年流的流动方式的转变,并且数值壁温与实验结果一致。将蒸气直径的径向直径和轴向长度的增长与实验数据进行了比较,发现径向直径具有良好的一致性,而由于气泡在成核部位附近的早期聚结,轴向长度出现了偏差。同时,发现局部传热系数受到流动模式的显着影响。还对沿流动方向的五个代表性位置处的局部蒸气质量的变化进行了定量研究,发现波动与局部流动模式一致。最后,我们提出了一种具有两个成核位置的流动沸腾的数值尝试,表明了本数值方法处理复杂的流动沸腾过程的良好潜力。此处提供的信息对于微型/微型反应器的设计和操作非常有用。 (C)2016 Elsevier B.V.保留所有权利。

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