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Numerical analysis of wind field induced by moving train on HSR bridge subjected to crosswind

机译:高铁桥侧风作用下列车走动引起的风场数值分析

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摘要

To investigate the characteristics of the combined wind field produced by the natural wind field and the train-induced wind field on the bridge, the aerodynamic models of train and bridge are established and the overset mesh technology is applied to simulate the movement of high-speed train. Based on ten study cases with various crosswind velocities of 0 similar to 20 m/s and train speeds of 200 similar to 350 km/h, the distributions of combined wind velocities at monitoring points around the train and the pressure on the car-body surface are analyzed. Meanwhile, the difference between the train-induced wind fields calculated by static train model and moving train model is compared. The results show that under non-crosswind condition, the train-induced wind velocity increases with the train speed while decreases with the distance to the train. Under the crosswind, the combined wind velocity is mainly controlled by the crosswind, and slightly increases with the train speed. In the combined wind field, the peak pressure zone on the headstock surface moves from the nose area to the windward side with the increase of wind velocity. The moving train model is more applicable in analyzing the train inch iced wind field.
机译:为了研究自然风场和桥梁上的风场产生的组合风场的特性,建立了火车和桥梁的空气动力学模型,并采用过冲网格技术来模拟高速运动。培养。基于十个不同风速为0(类似于20 m / s)和列车速度为200(类似于350 km / h)的研究案例,火车周围监测点的组合风速分布和车身表面压力被分析。同时,比较了静态列车模型和移动列车模型计算的列车风场之间的差异。结果表明,在非侧风条件下,列车引起的风速随列车速度的增加而增大,而随着到列车距离的减小而减小。在侧风下,组合风速主要受侧风控制,随列车速度而略有增加。在组合风场中,随着风速的增加,主轴箱表面的峰值压力区从机头区域向迎风侧移动。列车运行模型更适用于分析列车英寸的冰风场。

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