改善铁路车辆横向悬挂系统乘坐舒适性的新型混合控制策略

Y. Shiao, Tan-Linh Huynh
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引用次数: 0

摘要

乘坐舒适性是提高铁路车辆质量的一个关键研究领域。目前已开发出多种控制方法来改善乘坐舒适性,其中半主动控制方法继承了被动和主动控制方法的优点。然而,当车体载荷发生变化时,半主动控制在减振方面可能效果不佳。针对这一问题,我们提出了一种新型混合控制方法,该方法结合了天钩(SH)和位移速度(DV)控制方法,可在车身载荷变化时减少车身横向振动。首先,将在 Matlab 软件中建立的混合控制模型应用于四分之一铁路车辆模型,对乘坐舒适性进行了初步评估。其次,为了提供更全面的评估,利用协同仿真(Matlab-Simpack)将所提出的模型应用于整车模型。在四分之一模型中,在正弦激励下,与被动控制相比,当车体载荷减小到一半和四分之一时,混合控制的加速度分别降低了 48.5% 和 42.8%。这一结果在整个模型中得到了证实。此外,在整个模型中,在轨道不规则激励下,当车体载荷减小到一半和四分之一时,混合控制的加速度分别降低了 26.6% 和 17.4%。此外,根据脱轨系数(半载荷时为 0.0743,四分之一载荷时为 0.089),所提出的方法显示出了可接受的安全水平。总之,拟议的 SH-DV 混合控制在应对车身载荷变化时表现出较高的鲁棒性、适应性、有效性和可接受的安全水平。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A new hybrid control strategy for improving ride comfort on lateral suspension system of railway vehicle
The ride comfort is a key research area for the quality improvement of railway vehicles. Several control methods have been developed to improve the ride comfort, in which the semi-active control approach inherits the advantages of passive and active control approaches. However, the semi-active control may perform ineffectively in vibration attenuation when the carbody load changes. To address this issue, we proposed a novel hybrid control method that combines the skyhook (SH) and displacement velocity (DV) control methods to reduce vibrations of the carbody in the lateral direction under carbody load changes. First, a hybrid control model built in Matlab software was applied to a quarter railway vehicle model for a preliminary assessment of the ride comfort. Second, to provide a more comprehensive evaluation, the proposed model was applied to a whole railway vehicle model using co-simulation (Matlab-Simpack). In the quarter model, under the sinusoidal excitation, the hybrid control showed a lower acceleration by 48.5% and 42.8% when the carbody load reduced to a half and a quarter, respectively, compared to the passive control. This finding was confirmed with the whole model. Moreover, in the whole model, under the track irregular excitation, the hybrid control showed a lower acceleration by 26.6% and 17.4% when the carbody load reduced to a half and a quarter, respectively. Further, the proposed method showed an acceptable safety level, measured by the derailment coefficient (0.0743 at a half load and 0.089 at a quarter load). In conclusions, the proposed hybrid SH-DV control exhibits high robustness, adaptability, effectiveness, and acceptable safety level in response to variations in body load.
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