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首页> 外文期刊>Journal of Systems and Control Engineering >PIDNN control for Vernier-gimballing magnetically suspended flywheel under nonlinear change of stiffness and disturbance
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PIDNN control for Vernier-gimballing magnetically suspended flywheel under nonlinear change of stiffness and disturbance

机译:PIDNN控制Vernier-Gimballing磁悬浮在刚度和干扰的非线性变化下的飞轮

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摘要

Vernier-gimballing magnetically suspended flywheel is often used for attitude control and interference suppression of spacecrafts. Due to the special structure of the conical magnetic bearing, the radial component generated by the axial magnetic force and the change of the magnetic air gap will cause the nonlinearity of stiffness and disturbance. That will lead to not only poor stability of the suspension control system but also unsatisfactory tracking accuracy of the rotor position. To solve the nonlinear problem of the system, this article proposes a proportional-integral-derivative neural network control scheme. First, the rotor model considering the nonlinear variation of disturbance and stiffness parameters is established. Then, the weight of neural network is adjusted by the gradient descent method online to ensure the accurate output of magnetic force. Finally, the convergence analysis is carried out based on the Lyapunov stability theory. Compared with the general proportional-integral-derivative control and the radial basis function neural network control, the simulation results demonstrate that the proposed method has the highest tracking accuracy and excellent performance in improving stability. The experimental results prove the correctness of the theoretical analysis and the validity of the proposed method.
机译:Vernier-Gimballing磁悬浮飞轮通常用于航天器的姿态控制和干扰抑制。由于锥形磁轴承的特殊结构,由轴向磁力产生的径向分量和磁空气间隙的变化将导致刚度和干扰的非线性。这将不仅导致悬架控制系统的稳定性差,而且还不令人满意地跟踪转子位置的准确性。为了解决系统的非线性问题,本文提出了一种比例 - 积分衍生神经网络控制方案。首先,建立考虑扰动和刚度参数的非线性变化的转子模型。然后,通过在线梯度下降方法调整神经网络的重量,以确保磁力的准确输出。最后,基于Lyapunov稳定性理论进行了收敛性分析。与一般比例积分控制和径向基函数神经网络控制相比,仿真结果表明,该方法具有最高的跟踪精度和提高稳定性的优异性能。实验结果证明了理论分析的正确性和所提出的方法的有效性。

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