...
首页> 外文期刊>Shock and vibration >Coupling Effects of Yaw Damper and Wheel-Rail Contact on Ride Quality of Railway Vehicle
【24h】

Coupling Effects of Yaw Damper and Wheel-Rail Contact on Ride Quality of Railway Vehicle

机译:偏航阻尼器和轮轨接触对铁路车辆乘坐质量的耦合效应

获取原文
   

获取外文期刊封面封底 >>

       

摘要

The ride quality of the railway vehicle is not only affected by the wheel-rail contact geometry but also by the yaw damper. In order to explore this variation law, an equivalent parameter model of the yaw damper was established based on the internal characteristics of the yaw damper, which is both accurate and efficient. Then, considering the influence of wheel wear and wheel-rail contact geometry, ride quality of the railway vehicle under different parameters of yaw damper and wheel-rail contact parameters was analysed. The results show that the wheel-rail contact points are scattered on the wheel profile after the wheel wears out, and the equivalent conicity also tends to increase with the increasing operating mileage. The distribution of ride quality space is sensitive to the change of equivalent conicity. In the low equivalent conicity area, the expansion rate of excellent ride quality space is faster. In the high equivalent conicity area, the expansion rate of qualified ride quality space is faster. Appropriate additional stiffness which is oil stiffness in parallel with structural damping in the equivalent parameter model of the yaw damper can improve the vehicle ride quality. The lateral ride quality is influenced obviously with the condition of the damping of the yaw damper being less than 440?kN·s·m ?1 . Properly reducing the joint stiffness of the yaw damper could reduce the influence of characteristic parameters of the yaw damper and equivalent conicity of the wheel-rail contact on vehicle lateral ride quality. The optimized characteristic parameters of the yaw damper are used in the actual vehicle test, and the ride quality is effectively improved.
机译:铁路车辆的乘坐质量不仅受到轮轨接触几何形状的影响,而且由偏航阻尼器的影响。为了探索这种变异法,基于偏航阻尼器的内部特性建立了偏航阻尼器的等效参数模型,这既准确又高效。然后,考虑到车轮磨损和轮轨接触几何的影响,分析了横摆阻尼器和轮轨接触参数不同参数下火车车辆的乘积质量。结果表明,在车轮磨损后,车轮轨道接触点散布在车轮轮廓上,并且等同的优异性也随着操作里程的增加而增加。乘坐质量空间的分布对等效性的变化敏感。在低等效的优异性面积中,优异的乘坐质量空间的膨胀率更快。在高等同的优异性面积中,合格乘坐质量空间的扩展速率更快。在偏航器的等效参数模型中与结构阻尼平行的适当额外的刚度,其在偏航器的等效参数模型中可以改善车辆乘坐质量。横向骑行质量明显影响偏航阻尼器的阻尼的条件小于440?KN·S·M?1。正确降低偏航阻尼器的关节刚度可以降低车轮轨道接触的偏航阻尼器和等同性结合的特征参数对车辆横向乘坐质量的影响。偏航阻尼器的优化特性参数用于实际车辆测试,有效地提高了乘体质量。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号