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Adaptive compound control for the real-time hybrid simulation of high-speed railway train–bridge coupling vibration

机译:高速铁路火车桥联轴器振动实时混合仿真的自适应化合物控制

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摘要

The real-time hybrid simulation (RTHS), which combines experiment with numerical simulation, is an effective method to study the dynamic characteristic of high-speed railway train-bridge coupling vibration. In this paper, a simplified virtual RTHS platform of train-bridge coupling vibration is developed to illustrate the test logic and the feasibility of carrying out the physical test of moving train on bridge in a limited laboratory space. The accuracy and stability of the RTHS platform are highly dependent on the time delay caused by experimental loading device. The adaptive compound control composed of adaptive state feedback control (ASFC) and interpolation prediction algorithm is proposed to compensate for the time delay. Its adaptive control framework ensures the applicability by avoiding the need for prior knowledge of experimental substructure. The feedback control parameters are adjusted automatically, and the time delay is dynamically compensated according to the characteristics of the on-line estimated model of loading device and experimental substructure. The simulation results show that the proposed control is an effective approach for time delay compensation compared with the proportional control, the state feedback control, and the adaptive time-series control.
机译:将实验与数值模拟相结合的实时混合模拟(第RTH)是研究高速铁路火车桥联轴器振动动态特性的有效方法。在本文中,开发了一种火车桥联轴器振动的简化虚拟第三平台,以说明在有限的实验室空间中开展桥上移动列车物理测试的测试逻辑和可行性。 RTHS平台的准确性和稳定性高度依赖于由实验装载装置引起的时间延迟。提出了由自适应状态反馈控制(ASFC)和插值预测算法组成的自适应化合物控制以补偿时间延迟。其自适应控制框架通过避免先前了解实验性子结构的知识来确保适用性。自动调整反馈控制参数,并且根据装载装置和实验次结构的在线估计模型的特性动态地补偿时间延迟。仿真结果表明,与比例控制,状态反馈控制和自适应时间序列控制相比,该控制是一种有效的时间延迟补偿方法。

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