首页> 外文会议>International topical meeting on advances in thermal hydraulics 2016 >EVALUATING PERFORMANCE OF TWO-GROUP INTERFACIAL AREA TRANSPORT EQUATION FOR VERTICAL SMALL AND LARGE DIAMETER PIPES
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EVALUATING PERFORMANCE OF TWO-GROUP INTERFACIAL AREA TRANSPORT EQUATION FOR VERTICAL SMALL AND LARGE DIAMETER PIPES

机译:垂直小直径和大直径管道的两组界面传输方程的性能评估

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摘要

In the two-fluid transport model, the coupling of mass, momentum and energy transfer between phases is highly dependent on interfacial area transfer terms. Several research efforts in the past have been focused on the development of an interfacial area transport equation model (IATE), in order to eliminate the drawbacks of static flow regime maps currently used in best-estimate thermal-hydraulic system codes. The IATE attempts to model the dynamics that are involved in two phase flows by accounting for the different interaction mechanisms affecting bubble transport in the flow. The further development and validation of IATE models has been hindered by the lack of adequate experimental data in regions beyond the bubbly flow regime. At the Hehnholtz-Zentrum Dresden-Rossendorf (HZDR) experiments utilizing wire mesh sensors have been performed over all flow regimes, establishing a database of high-resolution (in space and time) data. Two sets of data from small and large diameter pipes fitted with wire mesh sensors is utilized in mis work. Analysis of flow conditions in the bubbly, chum turbulent and annular flow regimes is presented. The performance of the Fu-Ishii two-group model is evaluated against small diameter database. Results indicate good performance (< 10% error) for small group 1 bubbles, and poor performance for large group 2 bubbles. The Smith two-group large diameter IATE model is evaluated for the large diameter database. In low void-fraction regimes, the Smith model performs well. In high void-fraction regimes, there is poor group-wise interfacial area prediction - however the total interfacial area is erroneously predicted well as group-wise errors compensate each other. Overall, the study suggests that further efforts and re-evaluation of closure terms are needed in order to extend the range of validity of the IATE models.
机译:在双流体传输模型中,相之间的质量,动量和能量转移的耦合高度依赖于界面面积转移项。过去的一些研究工作集中在界面面积传输方程模型(IATE)的开发上,以消除目前在最佳估计热工液压系统代码中使用的静态流态图的缺点。 IATE通过考虑影响流中气泡传输的不同相互作用机制,尝试对两相流中涉及的动力学建模。 IATE模型的进一步开发和验证由于气泡流以外的地区缺乏足够的实验数据而受到阻碍。在Hehnholtz-Zentrum Dresden-Rossendorf(HZDR)上,已经在所有流动状态下进行了使用丝网传感器的实验,建立了高分辨率(时空)数据的数据库。误用了来自装有金属丝网传感器的小直径和大直径管道的两组数据。提出了气泡,密流和环形流动状态下的流动条件分析。 Fu-Ishii两组模型的性能针对小直径数据库进行了评估。结果表明,小组1的气泡性能良好(误差小于10%),大组2的气泡性能较差。针对大直径数据库评估了Smith的两组大直径IATE模型。在低空隙率条件下,Smith模型表现良好。在高空隙率状态下,基于组的界面面积预测效果不佳-但是,由于按组的误差相互补偿,因此错误地预测了总界面面积。总体而言,该研究表明需要进一步努力和对封闭条件进行重新评估,以扩大IATE模型的有效性范围。

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