首页> 外文会议>ASME International Conference on Micro/Nanoscale Heat and Mass Transfer >VISUALIZATION OF TWO-PHASE FLOW IN SERPENTINE HEAT EXCHANGER PASSAGES WITH MICROSCALE PIN FINS
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VISUALIZATION OF TWO-PHASE FLOW IN SERPENTINE HEAT EXCHANGER PASSAGES WITH MICROSCALE PIN FINS

机译:微观销鳍片蛇形热交换器通道中的两相流可视化

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Multiphase flow phenomena in single micro- and mini-channels have been widely studied. Microchannel heat exchangers offer the potential for high heat transfer coefficients; however, implementation challenges must be addressed to realize this potential. Maldistribution of phases among the microchannels in the array and the changing phase velocities associated phase change present design challenges. Flow maldistribution and oscillatory instabilities can severely affect heat and mass transfer rates as well as pressure drops. In components such as condensers, evaporators, absorbers and desorbers, changing phase velocities can change prevailing flow regimes from favorable to unfavorable. Geometries with serpentine passages containing pin fins can be configured to maintain favorable flow regimes throughout the length of the component for diabatic phase-change heat and mass transfer applications. Due to the possibility of continuous redistribution of the flow across the pin fins along the flow direction, maldistribution can also be reduced. These features enable the potential of high heat transfer coefficients in microscale passages to be fully realized, thereby reducing the required transfer area, and achieving considerable compactness. The characteristics of two-phase flow through a serpentine passage with micro-pin fin arrays with diameters 350 μm and height 406 μm are investigated here. An air-water mixture is used to represent two-phase flow through the serpentine test section, and a variety of flow features are visually investigated using high-speed photography. Improved flow distribution is observed in the serpentine geometry. Distinct flow regimes, different from those observed in microchannels are also established. These observations are used to obtain void fraction and interfacial area along the length of the serpentine passages and compared with the corresponding values for straight microchannels. Models for the two-phase frictional pressure drops across this geometry are also developed.
机译:单一微型和迷你通道中的多相流动现象已被广泛研究。微通道换热器提供高热传递系数的潜力;但是,必须解决实施挑战以实现这一潜力。阵列中微型通道中的阶段的阶段的恶性分布以及相位速度相关的相位变化存在的设计挑战。流量恶性分布和振荡不稳定性可能严重影响热量和质量传递率以及压力下降。在诸如冷凝器,蒸发器,吸收剂和解吸器的组分中,改变的相速度可以从有利地改变普遍存在的流动制度。含有销翅片的蛇形通道的几何形状可以被配置为在糖尿病相变热和传质应用的组件的整个长度中保持有利的流动状态。由于沿着流动方向穿过销翅片的流动连续重新分布的可能性,也可以减少恶性分布。这些特征使得能够完全实现微尺度通道中的高传热系数的电位,从而减少所需的转移区域,并实现相当大的紧凑性。这里研究了通过蛇形通道的两相流流动的特性进行研究,其中具有直径350μm和高度406μm的微引脚翅片阵列。空气 - 水混合物用于通过蛇形试验部分代表两相流,使用高速摄影目视研究各种流动特征。在蛇形几何形状中观察到改善的流动分布。还建立了与微通道观察到的不同流动制度。这些观察结果用于沿蛇形通道的长度获得空隙率和界面区域,并与直筒微通道的相应值进行比较。还开发了这种几何形状的两相摩擦压降的模型。

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