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High-Performance Control for a Bearingless Permanent-Magnet Synchronous Motor Using Neural Network Inverse Scheme Plus Internal Model Controllers

机译:使用神经网络逆方案和内部模型控制器的无轴承永磁同步电动机的高性能控制

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摘要

This paper proposes a novel decoupling scheme for a bearingless permanent-magnet synchronous motor (BPMSM) to achieve fast-response and high precision performances and to guarantee the system robustness to the external disturbance and parameter uncertainty. The proposed control scheme incorporates the neural network inverse (NNI) method and 2-degree-of-freedom (DOF) internal model controllers. By introducing the NNI systems into the original BPMSM system, a decoupled pseudo-linear system can be constituted. Additionally, based on the characteristics of the pseudo-linear system, the 2-DOF internal model control theory is utilized to design extra controllers to improve the robustness of the whole system. Consequently, the proposed control scheme can effectively improve the static and dynamic performances of the BPMSM system, as well as adjust the tracking and disturbance rejection performances independently. The effectiveness of the proposed scheme has been verified by both simulation and experimental results.
机译:提出了一种无轴承永磁同步电动机(BPMSM)的新型解耦方案,以实现快速响应和高精度性能,并保证系统对外部干扰和参数不确定性的鲁棒性。所提出的控制方案结合了神经网络逆(NNI)方法和2自由度(DOF)内部模型控制器。通过将NNI系统引入原始BPMSM系统,可以构成一个解耦的伪线性系统。另外,根据伪线性系统的特性,利用2-DOF内部模型控制理论设计额外的控制器,以提高整个系统的鲁棒性。因此,所提出的控制方案可以有效地改善BPMSM系统的静态和动态性能,并独立地调整跟踪和干扰抑制性能。仿真和实验结果均验证了该方案的有效性。

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