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Wind loads on a moving vehicle-bridge deck system by wind-tunnel model test

机译:通过风洞模型测试在移动的车桥甲板系统上的风荷载

摘要

Wind-vehicle-bridge (WVB) interaction can be regarded as a coupled vibration system. Aerodynamic forces and moment on vehicles and bridge decks play an important role in the vibration analysis of the coupled WVB system. High-speed vehicle motion has certain effects on the aerodynamic characteristics of a vehicle-bridge system under crosswinds, but it is not taken into account in most previous studies. In this study, a new testing system with a moving vehicle model was developed to directly measure the aerodynamic forces and moment on the vehicle and bridge deck when the vehicle model moved on the bridge deck under crosswinds in a large wind tunnel. The testing system, with a total length of 18.0 m, consisted of three main parts: vehicle-bridge model system, motion system and signal measuring system. The wind speed, vehicle speed, test objects and relative position of the vehicle to the bridge deck could be easily altered for different test cases. The aerodynamic forces and moment on the moving vehicle and bridge deck were measured utilizing the new testing system. The effects of the vehicle speed, wind yaw angle, rail track position and vehicle type on the aerodynamic characteristics of the vehicle and bridge deck were investigated. In addition, a data processing method was proposed according to the characteristics of the dynamic testing signals to determine the variations of aerodynamic forces and moment on the moving vehicle and bridge deck. Three-car and single-car models were employed as the moving rail vehicle model and road vehicle model, respectively. The results indicate that the drag and lift coefficients of the vehicle tend to increase with the increase of the vehicle speed and the decrease of the resultant wind yaw angle and that the vehicle speed has more significant effect on the aerodynamic coefficients of the single-car model than on those of the three-car model. This study also reveals that the aerodynamic coefficients of the vehicle and bridge deck are strongly influenced by the rail track positions, while the aerodynamic coefficients of the bridge deck are insensitive to the vehicle speed or resultant wind yaw angle.
机译:风车桥(WVB)的相互作用可以看作是耦合振动系统。车辆和桥面板上的空气动力和力矩在耦合WVB系统的振动分析中起着重要作用。高速车辆运动对侧风作用下的车桥系统的空气动力学特性有一定影响,但以前的大多数研究都没有考虑到这一点。在这项研究中,开发了一种具有移动车辆模型的新测试系统,以直接测量车辆模型在大型风洞中在侧风作用下在桥面板上移动时在车辆和桥面板上的空气动力和力矩。该测试系统总长度为18.0 m,主要由三部分组成:车桥模型系统,运动系统和信号测量系统。对于不同的测试案例,可以轻松地更改风速,车速,测试对象以及车辆与桥面的相对位置。使用新的测试系统测量了行驶中的车辆和桥面甲板上的空气动力和力矩。研究了车速,偏航角,铁轨位置和车辆类型对车辆和桥面板的空气动力特性的影响。此外,根据动态测试信号的特性,提出了一种数据处理方法,以确定在行驶中的车辆和桥面上的空气动力和力矩的变化。三厢模型和单厢模型分别用作移动轨道车辆模型和公路车辆模型。结果表明,车辆的阻力和升力系数随着车速的增加和风偏角的减小而趋于增加,并且车速对单车模型的空气动力系数影响更大。比三车模型的这项研究还表明,车辆和桥面板的空气动力学系数受轨道位置的强烈影响,而桥面板的空气动力学系数对车速或由此产生的偏航角不敏感。

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