一种新的无电解电容永磁同步电机正交电压约束弱磁控制方法

Junya Huo;Dawei Ding;Zekun Ren;Gaolin Wang;Nannan Zhao;Lianghong Zhu;Dianguo Xu
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引用次数: 2

摘要

在无电解电容永磁同步电机(PMSM)驱动中,由于使用了薄膜电容器,直流环节电压会在大范围内波动。在高速运行过程中,当弱磁电流低于$-\psi_{\mathrm{f}}/L_{\ mathrm{d}}$时,弱磁控制回路将转变为正反馈模式,这意味着弱磁电流的减小将导致电压饱和的加速,从而使整个系统不稳定。为了解决这个问题,本文提出了一种新的无电解电容电机驱动的磁通减弱方法,以在高速运行过程中保持控制回路的负反馈特性。在分析弱磁区失稳机理的基础上,构造了一种正交电压约束机制来稳定系统。同时,对控制器的参数进行了理论设计,以便于工业应用。该算法在1.5kW无电解电容永磁同步电机驱动器上实现,验证了弱磁性能的有效性。
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A Novel Flux-weakening Control Method with Quadrature Voltage Constrain for Electrolytic Capacitorless PMSM Drives
In electrolytic capacitorless permanent magnet synchronous motor (PMSM) drives, the DC-link voltage will fluctuate in a wide range due to the use of slim film capacitor. When the flux-weakening current is lower than $-\psi_{\mathrm{f}}/L_{\mathrm{d}}$ during the high speed operation, the flux-weakening control loop will transform to a positive feedback mode, which means the reduction of flux-weakening current will lead to the acceleration of the voltage saturation, thus the whole system will be unstable. In order to solve this issue, this paper proposes a novel flux-weakening method for electrolytic capacitorless motor drives to maintain a negative feedback characteristic of the control loop during high speed operation. Based on the analysis of the instability mechanism in flux-weakening region, a quadrature voltage constrain mechanism is constructed to stabilize the system. Meanwhile, the parameters of the controller are theoretically designed for easier industrial application. The proposed algorithm is implemented on a 1.5kW electrolytic capacitorless PMSM drive to verify the effectiveness of the flux-weakening performance.
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