Unity Power Factor control of permanent magnet motor drive system

M. Moussa, Ahmed A. Helal, Y. Gaber, H. A. Youssef
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引用次数: 23

Abstract

The permanent magnet synchronous motors (PMSMs) have gained an increasing interest recently. The wide variety of applications of PMSM drives makes it necessary to achieve fast and reliable drive control system design. Vector control of PMSM can achieve fast dynamic response with less complexity and parameter-independent controller, prevent demagnetization of the motor and allow maximum efficiency operation. In this paper, a novel unity power factor (UPF) control drive for PMSMs is presented. The drive is performed with constraint on the (PF) such that its steady-state value is unity. This feature provides an extension of the constant torque region, resulting in higher output power of the PMSM drive, which is desirable in many applications requiring extended speed range at rated motor torque. However, this drive is not optimal in terms of efficiency which will be less than that obtained from conventional decoupled vector control drive for the same torque. Therefore, it is concluded that before reaching the rated speed, the conventional decoupled vector control is preferable, whereas, the UPF control is optimal to have a wider range of speed operation (above the base speed of the conventional vector control) and hence, extension of the constant torque region. Above this extended base speed, the PMSM drive can be operated in constant power mode using the conventional field-weakening technique having constant supply voltage and current. The drive system is built using MATLAB-SIMULINK software. The validity is evaluated in both steady-state condition and transient response using computer simulation.
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永磁电机驱动系统的统一功率因数控制
永磁同步电动机近年来受到越来越多的关注。永磁同步电机驱动器的广泛应用要求实现快速可靠的驱动控制系统设计。矢量控制的永磁同步电机可以实现快速的动态响应,具有较低的复杂性和参数无关的控制器,防止电机退磁,实现最大的效率运行。提出了一种新颖的永磁同步电动机单位功率因数(UPF)控制驱动器。驱动是在对(PF)的约束下进行的,这样它的稳态值是统一的。该功能提供了恒定扭矩区域的扩展,从而提高了PMSM驱动器的输出功率,这在许多需要在额定电机扭矩下扩展速度范围的应用中是理想的。然而,就效率而言,这种驱动不是最优的,它将小于相同转矩的传统解耦矢量控制驱动所获得的效率。因此,在达到额定速度之前,传统的解耦矢量控制是优选的,而UPF控制具有更大的速度运行范围(高于传统矢量控制的基本速度),从而扩展恒转矩区域是最佳的。超过这个扩展的基本速度,永磁同步电机驱动器可以在恒功率模式下运行,使用传统的磁场减弱技术,具有恒定的供电电压和电流。采用MATLAB-SIMULINK软件构建驱动系统。通过计算机仿真对稳态和瞬态响应的有效性进行了评价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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