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Simulation of Taylor flow evaporation for bubble-pump applications

机译:气泡泵应用中泰勒流蒸发的模拟

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Single-pressure absorption systems incorporate bubble-pump generators (BPGs) for refrigerant separation and passive fluid circulation. In conventional spot-heated BPGs, heat is transferred over a small area, requiring high source temperatures. Distributed-heated BPGs receive thermal input over most of the component surface, enabling low temperature operation. In this investigation, a Volume-of-Fluid phase-change simulation formulation is developed and validated. This approach is applied to the evaporating Taylor flow pattern in distributed-heated BPGs. A 2-D axisymmetric simulation is performed, which yields detailed information about the developing heat transfer and two-phase flow phenomena. Results are used to assess predicted trends and sub-models from a 1-D segmented BPG model. Close agreement is obtained between segmented model and simulation results for bubble rise velocity (5-7% deviation), bubble and slug lengths, void fraction (3%), and hydrodynamic pressure drop (18%). Specifying average Taylor bubble lengths from the simulation as an input to the segmented model reduces hydrodynamic pressure drop deviation to 6%. Simulated flow-evaporation heat transfer coefficients are significantly higher than those predicted using analytic models from the literature. A new flow evaporation heat transfer correlation that accounts for developing slug flow effects is proposed, and yields close agreement with simulation results for heat transfer coefficient (AAD = 11%) and overall heat transfer rate (2%). Overall, this investigation provides validation for a distributed-heated BPG modeling approach, which can enable passive refrigeration for diverse applications.
机译:单压吸收系统结合了气泡泵发生器(BPG),用于制冷剂分离和被动流体循环。在传统的点加热式BPG中,热量传递的面积很小,因此需要较高的源温度。分布式加热的BPG在大部分组件表面上接受热输入,从而可以进行低温操作。在这项研究中,开发并验证了流体体积相变模拟公式。此方法适用于分布式加热BPG中的蒸发泰勒流动模式。进行了二维轴对称仿真,得出了有关传热发展和两相流动现象的详细信息。结果用于评估一维分段BPG模型的预测趋势和子模型。分段模型与模拟结果在气泡上升速度(偏差为5-7%),气泡和段塞长度,空隙率(3%)和流体动力压降(18%)之间取得了紧密的一致性。从模拟中指定平均泰勒气泡长度作为分段模型的输入,可将流体动力压降偏差降至6%。模拟的流-蒸发传热系数明显高于使用文献中的分析模型预测的值。提出了一种新的流动蒸发传热相关性,它考虑了团状流效应的发展,并且与传热系数(AAD = 11%)和总传热率(2%)的模拟结果紧密相关。总的来说,这项研究为分布式加热的BPG建模方法提供了验证,该方法可以为各种应用启用被动制冷。

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