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Optimal PID Controller for High-Speed Rail Pantograph System with Notch Filter

机译:具有陷波滤波器的高速轨道映对仪系统的最优PID控制器

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The pantograph device must exert enough upward force to maintain sliding contact with the catenary at all times to avoid loss of contact due to excessive transient motion. This paper presented a global-oriented particle swarm optimization (GPSO) technique with Cauchy mutation for tuning the optimal control gains of PID controller in a high-speed rail pantograph device with notch filter. The proposed method used the global-oriented mechanism to enhance the computation efficiency of traditional PSO algorithm and used a Cauchy operator for escaping local minima. To verify the advantage of the proposed GPSO-PID controller, a refined integrated time weighted squared error (RITSE) performance criterion was employed and a pantograph system with notch filter was tested. The results showed that the proposed method was indeed adaptive and robust in quick search of the PID controller parameters. The GPSO-PID controller can decrease rapidly the contact force variation between the pantograph and the catenary.
机译:受电弓装置必须始终施加足够的向上力以保持与凸起的滑动接触,以避免由于过度瞬态运动而丧失接触。本文介绍了一种全面导向的粒子群优化(GPSO)技术,具有CAUCHY突变,用于调整带有陷波滤波器的高速轨道映射仪装置中PID控制器的最佳控制增益。所提出的方法使用全局导向机制来提高传统PSO算法的计算效率,并使用Cauchy运算符来逃离局部最小值。为了验证所提出的GPSO-PID控制器的优势,采用了精制的综合时间加权平方误差(ritse)性能标准,并测试了具有缺口滤波器的受电弓系统。结果表明,在快速搜索PID控制器参数时,该方法确实适应性和强大。 GPSO-PID控制器可以迅速降低Pintograph和衔接之间的接触力变化。

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