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Numerical simulation of two trains intersecting in a tunnel

机译:两条相交的隧道的数值模拟

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This study uses a three-dimensional, compressible, turbulence model to investigate the pressure waves generated by two trains passing each other in a tunnel. The turbulent flow around the train bodies is computed by the RNG κ-ε turbulence model; a sliding mesh method is utilized to treat the moving boundary problem. The numerical results are verified through the results of laboratory experiment and field observation. Then, a series of numerical simulations are carried out to examine the influences of the tunnel length, the blockage ratio, the train speed and the intersecting location on the interactions of aerodynamic waves generated by the trains. The simulation results reveal that the pressure and drag coefficients of the trains reach a maximum when the two trains intersect at the mid-point of the tunnel and the values of pressure and drag coefficients increase as the train speed and the blockage ratio increase due to the train/tunnel interaction. However, the side force coefficient is dominated by the train/train interaction and its maximum value occurs when the two trains are aligned side by side.
机译:这项研究使用三维可压缩湍流模型来研究两列火车在隧道中相互通过产生的压力波。火车体周围的湍流由RNGκ-ε湍流模型计算得出。滑动网格法用于处理运动边界问题。通过实验室实验和现场观察的结果验证了数值结果。然后,进行了一系列数值模拟,以考察隧道长度,阻塞率,列车速度和相交位置对列车产生的空气动力波相互作用的影响。仿真结果表明,当两列火车在隧道中点相交时,火车的压力系数和阻力系数达到最大值,并且随着速度的增加和阻塞率的增加,压力系数和阻力系数的值也随之增加。火车/隧道互动。但是,侧向力系数受列车/列车相互作用的影响,当两个列车并排对齐时,其最大值就会出现。

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