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首页> 外文期刊>International Journal of Heat and Mass Transfer >Modeling Of The Microconvective Contribution To Wall Heat Transfer In Subcooled Boiling Flow
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Modeling Of The Microconvective Contribution To Wall Heat Transfer In Subcooled Boiling Flow

机译:过冷沸腾流动中对流传热的微对流建模

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In the present work, the two-phase turbulent boundary layer in subcooled boiling flow is investigated. The bubbles in the near-wall region have a significant effect on the dynamics of the underlying liquid flow, as well as on the heat transfer. The present work develops a single-fluid model capable of accounting for the interactions between the bubbles and the liquid phase, such that the two-phase convec-tive contribution to the total wall heat transfer can be described appropriately even in the framework of single-fluid modeling. To this end, subcooled boiling channel flow was experimentally investigated using a laser-Doppler anemometer to gain insight into the bubble-laden near-wall velocity field. It was generally observed that the streamwise velocity component was considerably reduced compared to the single-phase case, while the near-wall turbulence was increased due to the presence of the bubbles. Since the experimentally observed characteristics of the liquid velocity field turned out to be very similar to turbulent flows along rough surfaces, it is proposed to model the near-wall effect of the bubbles on the liquid flow analogously to the effect of a surface roughness. Incorporating the proposed approach as a dynamic boundary condition into a well-established mechanistic flow boiling model makes it possible to reflect adequately the contribution of the microconyection to the total wall heat transfer. A comparison against the experimental data shows good agreement for the predicted wall shear stress as well as for the wall heat flux for a wide range of wall temperatures and Reynolds numbers.
机译:在本工作中,研究了过冷沸腾流中的两相湍流边界层。近壁区域中的气泡对下面的液体流动的动力学以及传热具有显着影响。本工作开发了一种能够解释气泡和液相之间相互作用的单流体模型,从而即使在单塔结构的框架下,也可以恰当地描述两相对流对总壁热传递的贡献。流体建模。为此,使用激光多普勒风速计对过冷沸腾通道的流动进行了实验研究,以了解充满气泡的近壁速度场。通常观察到,与单相情况相比,沿流速度分量显着降低,而由于气泡的存在,近壁湍流增加。由于实验观察到的液体速度场的特征与沿粗糙表面的湍流非常相似,因此提出了模拟气泡对液体流动的近壁效应,类似于表面粗糙度的效应。将所提出的方法作为动态边界条件并入已建立的机械流沸腾模型,可以充分反映微连接对总壁热传递的贡献。与实验数据的比较表明,在很大范围的壁温和雷诺数下,预测的壁切应力以及壁热通量都具有良好的一致性。

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