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Tuning of Digital PID Controllers Using Particle Swarm Optimization Algorithm for a CAN-Based DC Motor Subject to Stochastic Delays

机译:使用粒子群优化算法调整数码PID控制器,用于将基于CAN的直流电动机进行随机延迟

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摘要

In this article, we investigate the tuning problem of digital proportional-integral-derivative (PID) parameters for a dc motor controlled via the controller area network (CAN). First, the model of the dc motor is presented with its parameters being identified with experimental data. By studying the CAN network characteristics, we obtain the CAN-induced delays related to the load rate and the priorities. Then, considering the system model, the network properties, and the digital PID controller, the tuning problem of PID parameters for the CAN-based dc motor is transformed into a design problem of a static-output-feedback controller for a time-delayed system. To solve this problem, particle swarm optimization algorithm and linear-quadratic-regulator method are adopted by incorporating the sufficient condition of time-varying delay system. Finally, the effectiveness of the proposed PID tuning strategy is validated by experimental results.
机译:在本文中,我们研究了通过控制器区域网络(CAN)控制DC电机的数字比例积分 - 衍生(PID)参数的调谐问题。首先,通过实验数据识别其参数的DC电动机的模型。通过研究CAN网络特征,我们获得与负载率和优先级相关的CAN引起的延迟。然后,考虑到系统模型,网络属性和数字PID控制器,将基于CAN的DC电动机的PID参数的调谐问题转换为静态输出 - 反馈控制器的设计问题,用于时间延迟系统。为了解决这个问题,通过结合时变延迟系统的充分条件来采用粒子群优化算法和线性 - 二次调节方法。最后,通过实验结果验证了所提出的PID调谐策略的有效性。

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