计算流体力学——不同倾角立管内气固传热的两流体模型研究

K. Azizi, M. Moraveji
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引用次数: 7

摘要

采用双流体模型(TFM)研究了不同倾角立管内的气固传热。选择内径5.8 cm,长5 m的二维管道。研究了床层角度和固体颗粒进给量对气体和固体颗粒传热行为的影响。仿真结果与相关文献中的实验数据进行了比较。与垂直和水平管道相比,倾斜管道中相的换热行为是不同的。结果表明,当管道倾角为45°时,气固努塞尔数、空气温差和颗粒温差较大。载荷比增大会增大气体温度差。在低加载比和高加载比下,颗粒温差随加载比的增大而减小和增大。
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Computational Fluid Dynamic- Two Fluid Model Study of Gas-Solid Heat Transfer in a Riser with Various Inclination Angles
A two fluid model (TFM) was used to study gas-solid heat transfer in a riser with different inclination angles. A two dimensional pipe with 5.8 cm internal diameter and 5 meter length was chosen.  Effect of bed angle and solid particles feed rate were studied on the heat transfer behavior of gas and solid particles. Obtained results from simulation are compared with the experimental data in the relevant literature. Heat transfer behavior of phases is different in an inclined pipe in comparison with vertical and horizontal pipes. It is found that higher air-solid Nusselt number, air temperature difference and particle temperature difference take place at the pipe with inclination angle equal to 45 degrees. Loading ratio enhancement increases gas temperature differences. At lower and higher loading ratio, particles temperature differences decreases and increases respectively with loading ratio enhancement.
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