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Hysteretic heat transfer study of liquid-liquid two-phase flow in a T-junction microchannel

机译:液液两相流动在T型结微通道中的滞回传热研究

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Liquid-liquid two-phase flow in microchannels is capable of boosting the heat removal rate in cooling processes. Formation of different two-phase flow patterns which affect the heat transfer rate is numerically investigated here in a T-junction containing water-oil flow. For this purpose, the finite element method (FEM) is applied to solve the unsteady two-phase Navier-Stokes equations along with the level set (LS) equation in order to capture the interface between phases. It is shown that the two-phase flow pattern in microchannels depends on the flow initial condition which causes hysteresis effect in two-phase flow. In this study, the hysteresis is observed in flow pattern and consequently in the heat transfer rate. The effect of wall contact angle on the hydrodynamics and heat transfer in the microchannel is investigated to gain useful insight into the hysteresis phenomenon. It is observed that the hysteresis is significant in super-hydrophilic microchannels, while it disappears at the contact angle of 75 degrees. The effect of water to oil flow rate ratio (Q(wat)/Q(oil)) on the heat transfer is also studied. The flow rate ratio has a negligible effect on the Nusselt number (Nu) in the dripping regime, while the Nu decreases with an increase of Q(wat)/Q(oil) in the co-flow regime. The thickness of the oil film, velocity, and temperature distribution are studied in the co-flow regime. It is revealed that the normalized slip velocity reduces at higher values of Q(wat)/Q(oil) which causes a reduction in the averaged Nu. In dripping regimes, higher flow rate ratios lead to a more frequent generation of droplet/slugs at a smaller size. The passage of the slugs or droplets increases the local Nu. Larger droplets generated at lower flow rate ratios cause a larger increase in the local Nu than smaller droplets. The temperature and velocity field around the droplets are also illustrated to investigate the heat transfer improvement. The generated vortex at the tip of the oil jet causes an increase in the velocity and Nu on the water side.
机译:微通道中的液体液体两相流能够提高冷却过程中的散热速率。在含有水 - 油流的T型交界处,数量地研究影响传热速率的不同两相流动模式的形成。为此目的,应用有限元方法(FEM)来解决非定常的两相Navier-Stokes方程以及电平集(LS)等式,以便捕获相之间的接口。结果表明,微通道中的两相流动模式取决于流动初始条件,这导致两相流中的滞后效应。在该研究中,在流动模式中观察到滞后,并因此以传热速率观察。研究了壁接触角对微通道中流体动力学和热传递的影响,以获得对滞后现象的有用洞察力。观察到滞后在超亲水微通道中是显着的,而它在75度的接触角处消失。还研究了水对流量比率(Q(Wat)/ Q(油))的影响。流量比对滴水制度的露珠数(NU)具有可忽略不计的影响,而NU随着共流状态的Q(WAT)/ Q(油)的增加而降低。在共流状态下研究了油膜,速度和温度分布的厚度。据透露,归一化滑移速度在Q(Wat)/ Q(油)的较高值下降低,这导致平均nu的减少。在滴水制度中,较高的流量比率导致更频繁地产生较小尺寸的液滴/粘液。 SLUIS或液滴的通过增加了本地NU。在较低流量比下产生的较大液滴导致局部NU的较大增加而不是较小的液滴。还示出了液滴周围的温度和速度场,以研究传热改善。油射流尖端的产生的涡流导致水侧的速度和元速度增加。

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