基于FSMO-SOGI的永磁直线同步电机自适应反步速度控制

Adaptive Backstepping Speed Control of Permanent Magnet Linear Synchronous Motor Based on FSMO-SOGI

  • 摘要: 为提高永磁直线同步电机速度控制的稳定性,尤其是在高速运动时的速度波动抑制能力,提出了一种基于FSMO-SOGI的永磁直线同步电机自适应反步速度控制策略。首先,根据Lyapunov稳定性定理设计了自适应反步速度控制器,该控制器可以对动子质量、摩擦因数和负载扰动等不确定性参数进行估计,从而实现控制系统全局渐近稳定的速度跟踪控制。其次,为了实现速度闭环控制,提出了一种将全阶滑模观测器(Full-order sliding mode observer,FSMO)与二阶广义积分滤波器(Second order generalized integral filter,SOGI)相结合的无传感器控制方法。FSMO基于电流和反电动势模型,可以提高反电动势的观测精度,而SOGI则有效滤除反电动势中的谐波分量。最后,通过试验证明了本文方法能够实现电机动子速度的准确辨识,提升了永磁直线同步电机速度控制的品质。

     

    Abstract: To enhance the speed control stability of the permanent magnet linear synchronous motor, particularly the speed fluctuation suppression ability at high speed, an adaptive backstepping speed control strategy based on FSMO-SOGI is proposed. Initially, leveraging the Lyapunov stability theorem, an adaptive backstepping speed controller is formulated. This controller adeptly estimates uncertain parameters, such as actuator mass, friction coefficient, and load disturbance, thereby facilitating global asymptotically stable speed tracking control within the system. Subsequently, to realize closed-loop speed control, a sensorless control method is proposed, combining a full-order sliding mode observer(FSMO) with a second-order generalized integral filter(SOGI). The FSMO, rooted in current and back electromotive force models, enhances the accuracy of back electromotive force observation, while the SOGI effectively filters harmonic components of the back electromotive force. Finally, experimental results demonstrate the efficacy of this approach in achieving precise identification of motor rotor speed and enhancing the quality of speed control of the hybrid linear stepper motor.

     

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