Raw data based model and high dynamic control concept for traction drives powered by synchronous reluctance machines

S. Staudt, A. Stock, T. Kowalski, J. Teigelkotter, K. Lang
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引用次数: 6

Abstract

Due to simple mechanical design, resulting in low manufacturing costs, combined with high efficiency and power density, the synchronous reluctance machine (SynRM) is continuously establishing itself as an important machine type for inverter-fed electrical drives. Especially in high volume applications, e.g. traction drives, the SynRM could replace induction machines (IM) by means of significant reduction of the production costs without decreasing the performance of the drive system. However, the inverter control algorithm is getting much more complicated, compared to other machine types. The reason is that the machine is strongly non-linear. In order to optimize the control, an accurate and reliable machine model, based on measurement values, is developed. Furthermore, an optimized control scheme for low voltage battery-fed traction drives, based on the measured machine characteristics, is presented. The traction drive requires a wide speed range and speed variability of the electrical machine. Due to the limited voltage of the battery, the control has to be adaptable to the instantaneous operating point, especially for high speed in the field weakening area. Therefore the Direct Self Control (DSC), originally investigated for the operation of induction machines, is used to control the SynRM drive. Additionally, the control must be able to react to high dynamic speed and load changes without losing stability.
基于原始数据的模型和同步磁阻电机驱动的高动态控制概念
由于机械设计简单,制造成本低,加上高效率和功率密度高,同步磁阻电机(SynRM)不断成为逆变电源驱动的重要机器类型。特别是在大容量应用中,例如牵引驱动,SynRM可以通过显著降低生产成本而不降低驱动系统的性能来取代感应电机(IM)。然而,与其他类型的机器相比,逆变器的控制算法变得越来越复杂。原因是机器是强烈非线性的。为了优化控制,建立了基于测量值的精确可靠的机床模型。在此基础上,提出了一种基于实测机器特性的低压蓄电池供电牵引传动优化控制方案。牵引传动要求电机具有较宽的调速范围和速度可变性。由于蓄电池电压的限制,控制必须适应瞬时工作点,特别是在磁场减弱区高速运行时。因此,直接自我控制(DSC),最初研究的感应电机的操作,是用来控制SynRM驱动器。此外,控制必须能够在不失去稳定性的情况下对高动态速度和负载变化做出反应。
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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