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Linear quadratic state feedback and robust neural network estimator for field-oriented-controlled induction motors

机译:磁场定向的线性二次状态反馈和鲁棒神经网络估计器

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摘要

A field-oriented control scheme for an induction motor with a linear quadratic optimal regulator and a robust neural network estimator is proposed. The state feedback is designed by using the synchronous frame motor model. The number of the states is increased in order to take into account the presence of two integrators on the flux and torque errors. The resulting model is suitably simplified and the corresponding approximations are discussed. The procedure proposed is shown to be suitable also for the design of the state feedback via the pole placement technique. A comparison with standard proportional integral regulators is provided. The rotor flux is estimated by using a robust neural network observer. The network training set is suitably designed in order to preserve the drive effectiveness also in the presence of large parameter uncertainties. The robust neural observer is compared with an extended Kalman filter and a standard neural network observer. Using a 250 kW induction motor as a case study, the simulation results show the effectiveness of the proposed solution, both during transient and steady-state operating conditions.
机译:提出了一种具有线性二次最优调节器和鲁棒神经网络估计器的感应电动机的磁场定向控制方案。通过使用同步框架电机模型来设计状态反馈。为了考虑通量和转矩误差上两个积分器的存在,增加了状态数。适当简化了所得模型,并讨论了相应的近似值。所提出的程序也显示适用于通过极点放置技术进行状态反馈的设计。提供了与标准比例积分调节器的比较。转子磁通通过使用鲁棒的神经网络观察器进行估算。网络训练集经过适当设计,以便在存在较大参数不确定性的情况下也能保持驱动效果。将健壮的神经观察器与扩展的卡尔曼滤波器和标准神经网络观察器进行比较。以250 kW感应电动机为例,仿真结果表明了该解决方案在瞬态和稳态运行条件下的有效性。

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