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Modeling for solar array drive assembly system and compensating for the rotating speed fluctuation

机译:太阳能电池阵列驱动组件系统建模并补偿转速波动

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A dynamic model of the solar array drive assembly (SADA) system consisting of a stepper motor and two flexible solar arrays is investigated. The fluctuation compensation of the rotating speed and vibration suppression is studied by integrating the sliding mode control (SMC) method and input shaping (IS) technique. The dynamic equations of the system are derived by the Hamiltonian Principle. The linearized form of the nonlinear dynamic equations with boundaries conditions is adopted to obtain the natural frequencies and global modes of the solar arrays. Based on the electromechanical dynamics model of the stepper motor, a cooperative compensation scheme is designed to achieve the stability of solar arrays and the suppression of system vibration. Numerical results show that the driving speed is significantly influenced by the harmonic torque and the structural vibration of payload. The SMC method compensates for the rotating speed fluctuation much better than the pure feed-forward operation used in the traditional stepper motor. The system with SMC method and IS technique performs much better than the case without vibration suppression. (C) 2018 Elsevier Masson SAS. All rights reserved.
机译:研究了由步进电机和两个柔性太阳能电池阵列组成的太阳能电池阵列驱动组件(SADA)系统的动力学模型。结合滑模控制(SMC)方法和输入整形(IS)技术,研究了转速的波动补偿和振动抑制。系统的动力学方程是根据哈密顿原理得出的。采用具有边界条件的非线性动力学方程的线性化形式来获得太阳能电池阵列的固有频率和整体模态。基于步进电机的机电动力学模型,设计了一种协同补偿方案,以实现太阳能电池阵列的稳定性和系统振动的抑制。数值结果表明,驱动速度受到谐波转矩和有效载荷结构振动的显着影响。与传统的步进电机中使用的纯前馈操作相比,SMC方法可以更好地补偿转速波动。采用SMC方法和IS技术的系统的性能要好于没有振动抑制的情况。 (C)2018 Elsevier Masson SAS。版权所有。

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