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首页> 外文期刊>Journal of Systems and Control Engineering >Adaptive neural network control for rotor's stable suspension of Vernier-gimballing magnetically suspended flywheel
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Adaptive neural network control for rotor's stable suspension of Vernier-gimballing magnetically suspended flywheel

机译:转子稳定悬架的自适应神经网络控制磁悬浮飞轮

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摘要

Vernier-gimballing magnetically suspended flywheel with conical hybrid magnetic bearing can produce gyro moment by tilting the rotational rotor around a certain radial direction. When rotor is tilted, the nonlinear variation of conical magnetic bearing's displacement stiffness and the coupling interference can result in not only poor stability of suspension control system but also precision's degradation of gyro moment. To solve these two problems, the forces acting on tilted rotor are analyzed, and furthermore, a nonlinear model considering variation of displacement stiffness is constructed accordingly, then a radial basis function neural network is utilized to estimate the nonlinear variation of displacement stiffness and disturbance, and the adaptive controller with nonlinear variation compensation is presented based on the Lyapunov stability theory. Compared with cross-feedback method in tilting control and proportional-integral-derivative method in translation control, simulation researches are done, and the results indicate that the presented control method does well in estimating nonlinear variation and has better performances on suspension control when rotor is tilted.
机译:Vernier-Gimballing磁悬浮飞轮,具有锥形混合磁轴承可以通过围绕一定径向倾斜旋转转子来产生陀螺仪。当转子倾斜时,锥形磁性轴承的位移刚度和耦合干扰的非线性变化可能导致悬架控制系统的稳定性不仅差,而且产生精度的陀螺仪的劣化。为了解决这两个问题,分析了作用在倾斜转子上的力,并且还相应地构造了考虑位移刚度变化的非线性模型,然后利用径向基函数神经网络来估计位移刚度和干扰的非线性变化,基于Lyapunov稳定性理论,提出了具有非线性变化补偿的自适应控制器。与翻译控制中的横向反馈方法相比,在翻译控制中进行了平移控制和比例 - 积分 - 衍生法,完成了模拟研究,结果表明,所示的控制方法在估计非线性变化时确实良好,并且在转子时具有更好的悬架控制性能斜。

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