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Numerical analysis of airflow around a passenger train entering the tunnel

机译:进入隧道的旅客列车周围气流的数值分析

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In this paper, the characteristics of train-tunnel interaction at a tunnel entrance has been investigated numerically. A three-dimensional numerical model using the remeshing method for the moving boundary of a passenger train in Iran railway was applied. The turbulent flows generated by the moving-train in a tunnel were simulated by the RNG K-e turbulence model. The simulations have been carried out to understand the effect of the train speed as well as the influences of the hoods and air vents on the pressure waves, drag, and side force coefficients. The results show that the maximum drag coefficient occurs when the train enters the tunnel and is equal to 2.2. The air vents and enlarged hood at the portal are demonstrated to attenuate the pressure gradient and drag coefficient about 28% and 36%, respectively. Furthermore when train is entering the tunnel asymmetrically, a side force is created that pushes the train toward the tunnel wall, which the maximum side force is 900 N.
机译:本文对隧道入口处的列车-隧道相互作用的特征进行了数值研究。针对伊朗铁路客运列车的行驶边界,采用网格化方法建立了三维数值模型。利用RNG K-e湍流模型模拟了隧道中的动车产生的湍流。已经进行了模拟,以了解列车速度的影响以及引擎盖和通风口对压力波,阻力和侧向力系数的影响。结果表明,当列车进入隧道时,最大阻力系数等于2.2。门户处的通风孔和扩大的机罩被证明分别使压力梯度和阻力系数衰减约28%和36%。此外,当火车不对称地进入隧道时,会产生一个将火车推向隧道壁的侧向力,最大侧向力为900N。

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