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MOPSO-based predictive control strategy for efficient operation of sensorless vector-controlled fuel cell electric vehicle induction motor drives

机译:基于MOPSO的预测控制策略可实现无传感器矢量控制燃料电池电动汽车感应电动机驱动器的高效运行

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This paper introduces an optimal control strategy of model-based predictive control (MPC) based on multiobjective particle swarm optimization (MOPSO) for a sensorless vector control induction motor, which is used in a fuel cell electric vehicle drive system. The proposed MPC-MOPSO algorithm is implemented to tune the weighting parameters of the MPC controller to tackle all the conflicting objective functions. The paper handles the following fitness functions: minimizing the speed error, minimizing the torque ripple, minimizing the DC-link voltage ripple, and minimizing machine flux ripple. Computer simulations studies have been completed utilizing MATLAB/Simulink with a specific end goal of assessing the dynamic performance of the proposed MPC-MOPSO optimal controller and comparing it with single-objective particle swarm optimization and traditional PI controllers. The simulation results demonstrate the good dynamic response of the proposed MPC-MOPSO optimal tuning strategy over the traditional PI controllers for more accurate tracking performance through the whole speed range, especially at starting conditions and load change disturbances.
机译:本文介绍了一种基于多目标粒子群优化(MOPSO)的无传感器矢量控制感应电动机基于模型的预测控制(MPC)的最优控制策略,该控制策略用于燃料电池电动汽车驱动系统。所提出的MPC-MOPSO算法被实现来调整MPC控制器的加权参数,以解决所有冲突的目标函数。该纸张具有以下适应性功能:最小化速度误差,最小化转矩波动,最小化直流母线电压波动以及最小化机器磁通波动。已经使用MATLAB / Simulink完成了计算机仿真研究,最终目标是评估所提出的MPC-MOPSO最优控制器的动态性能,并将其与单目标粒子群优化和传统PI控制器进行比较。仿真结果表明,与传统的PI控制器相比,所提出的MPC-MOPSO最佳调整策略具有良好的动态响应,可以在整个速度范围内,尤其是在启动条件和负载变化干扰下,实现更精确的跟踪性能。

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