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Running Safety of Trains under Vessel-Bridge Collision

机译:船舶桥架碰撞下列车的运行安全

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摘要

To optimize the sensor placement of the health monitoring system, the dynamic behavior of the train-bridge system subjected to vessel-collision should be studied in detail firstly. This study thus focuses on the characteristics of a train-bridge system under vessel-bridge collision. The process of the vessel-bridge collision is simulated numerically with a reliable finite element model (FEM). The dynamic responses of a single car and a train crossing a cable-stayed bridge are calculated. It is shown that the collision causes significant increase of the train’s lateral acceleration, lateral wheelset force, wheel unloading rate, and derailment coefficient. The effect of the collision on the train’s vertical acceleration is much smaller. In addition, parametric studies with various train’s positions, ship tonnage, and train speed are performed. If the train is closer to the vessel-bridge collision position or the ship tonnage is larger, the train will be more dangerous. There is a relatively high probability of running danger at a low speed, resulting from longer stay of the train on the bridge. The train’s position, the ship tonnage, and the train speed must be considered when determining the most adverse conditions for the trains running on bridges under vessel-bridge collision.
机译:为了优化健康监测系统的传感器放置,进行容器碰撞车桥系统的动态行为,应详细首先研究。因此,本研究的重点是车桥系统下的船舶撞桥的特点。容器桥碰撞的处理进行了可靠的有限元模型(FEM)数值模拟。一个单一的汽车和火车穿越斜拉桥的动力响应计算。结果表明,碰撞导致火车的横向加速度的显著增加,横向轮轴力,车轮卸载速率,和脱轨系数。在火车上的垂直加速度碰撞的影响要小得多。此外,各次列车的位置,船舶吨位和列车速度参数研究执行。如果列车接近船舶撞桥位置或船舶吨位较大,列车将更加危险。有一个在低速运转的危险,从桥上列车长时间的停留造成的几率比较高。列车的位置,船舶吨位,火车速度必须确定对下船舶撞桥桥行驶的各列车的最不利的条件时予以考虑。

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