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Analysis of dynamic stiffness effect of primary suspension helical springs on railway vehicle vibration

机译:一次悬架螺旋弹簧对铁路车辆振动的动刚度影响分析

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摘要

Helical springs within the primary suspension are critical components for isolating the whole vehicle system from vibration generated at the wheel/rail contact. As train speeds increase, the frequency region of excitation becomes larger, and a simplified static stiffness can no longer represent the real stiffness property in a vehicle dynamic model. Coil springs in particular exhibit strong internal resonances, which lead to high vibration amplitudes within the spring itself as well as degradation of the vibration isolation. In this paper, the dynamic stiffness matrix method is used to determine the dynamic stiffness of a helical spring from a vehicle primary suspension. Results are confirmed with a finite element analysis. Then the spring dynamic stiffness is included within a vehicle-track coupled dynamic model of a high speed train and the effect of the dynamic stiffening of the spring on the vehicle vibration is investigated. It is shown that, for frequencies above about 50 Hz, the dynamic stiffness of the helical spring changes sharply. Due to this effect, the vibration transmissibility increases considerably which results in poor vibration isolation of the primary suspension. Introducing a rubber layer in series with the coil spring can attenuate this effect.
机译:主悬架内的螺旋弹簧是使整个车辆系统与车轮/轨道接触处产生的振动隔离的关键组件。随着列车速度的增加,励磁的频率区域变大,并且简化的静态刚度不再能够代表车辆动力学模型中的实际刚度属性。盘簧尤其表现出强烈的内部共振,这导致弹簧自身内部的高振动振幅以及隔振性能的下降。在本文中,动态刚度矩阵方法用于确定来自车辆主悬架的螺旋弹簧的动态刚度。结果通过有限元分析得到确认。然后将弹簧动态刚度包括在高速列车的车轨耦合动力学模型中,并研究了弹簧的动态刚度对车辆振动的影响。结果表明,对于高于50 Hz的频率,螺旋弹簧的动态刚度会急剧变化。由于这种作用,振动的可传递性大大提高,这导致主悬架的隔振性差。引入与螺旋弹簧串联的橡胶层可以减弱这种影响。

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