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An innovative hardware in the loop architecture for the analysis of railway braking under degraded adhesion conditions through roller-rigs

机译:循环体系结构中的创新硬件,可通过压路机在附着力降低的条件下分析铁路制动

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Nowadays, the longitudinal train dynamical behaviour is almost totally controlled by braking on board subsystems, such as Wheel Slide Protection (WSP) devices. The study and the development of these systems are fundamental for the vehicle safety, especially at high speeds and under degraded adhesion conditions. Traditionally, the performance of braking subsystems is tested on full-scale roller-rigs, to save time and to avoid expensive on-track tests. However, the study of the subsystem behaviour under degraded adhesion conditions on roller-rigs is still limited to few applications since high slidings among rollers and wheelsets generate wear of the rolling surfaces. This event is not acceptable because of the effects on the maintenance costs (the rollers have to be turned or substituted), on the system dynamical stability and on the safety. In this work the authors present an innovative Hardware In the Loop (HIL) approach for testing braking on board subsystems on full-scale roller-rigs. The new approach permits the reproduction on the roller-rig of a generic wheel-rail adhesion pattern and, in particular, of degraded adhesion conditions. The described strategy is the same implemented on the innovative full-scale roller-rig, recently built by Trenitalia and owned by SIMPRO, in the Railway Research and Approval Center of Firenze-Osmannoro (Italy). To validate the proposed approach, a complete model of the HIL system has been developed; the results provided by the simulation model have been compared to the experimental data provided by Trenitalia and relative to the on-track tests performed in Velim, Czech Republic, with a UIC-Z1 coach equipped with a fully-working WSP system. The complete model is based on the real characteristics of the components provided by Trenitalia. The preliminary validation performed with the HIL model highlighted the good performance of the HIL strategy in reproducing on the roller-rig the complex behaviour of the degraded adhesion during the braking of a railway vehicle. The next steps of the research activity will be the implementation both of the controller and the virtual vehicle model on the real Firenze-Osmannoro roller-rig.
机译:如今,火车的纵向动力学行为几乎完全由车上子系统的制动来控制,例如车轮防滑保护(WSP)设备。这些系统的研究和开发对于车辆安全至关重要,特别是在高速行驶和附着力下降的情况下。传统上,制动子系统的性能是在大型履带式钻机上进行测试的,以节省时间并避免进行昂贵的现场测试。然而,由于在辊子和轮对之间的高滑动会产生滚动表面的磨损,因此对在辊式钻机上粘附力下降的子系统行为的研究仍然仅限于很少的应用。由于对维护成本(必须转动或更换滚轴),系统动态稳定性和安全性有影响,因此无法接受此事件。在这项工作中,作者提出了一种创新的“硬件在环(HIL)”方法,用于测试全尺寸压路机上的子系统的制动。新的方法允许在轮式钻机上复制通用的轮轨附着图案,尤其是降低附着条件。所描述的策略与由Trenitalia最近建造,SIMPRO拥有的创新型全尺寸压路机在意大利Firenze-Osmannoro铁路研究与批准中心实施的相同。为了验证所提出的方法,已经开发了完整的HIL系统模型。仿真模型提供的结果已与Trenitalia提供的实验数据进行了比较,并与在捷克共和国Velim进行的现场测试相比较,其中UIC-Z1教练配备了可正常运行的WSP系统。完整的模型基于Trenitalia提供的组件的真实特性。使用HIL模型进行的初步验证突出了HIL策略在滚动式钻机上再现铁路车辆制动过程中粘附力降低的复杂行为的良好性能。研究活动的下一步将是在实际的Firenze-Osmannoro轮式钻机上实现控制器和虚拟车辆模型。

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