首页> 外文会议> >Design and optimization, steady-state and dynamic analysis of synchronous reluctance motors controlled by voltage-fed converters with nonlinear controllers
【24h】

Design and optimization, steady-state and dynamic analysis of synchronous reluctance motors controlled by voltage-fed converters with nonlinear controllers

机译:带有非线性控制器的电压变换器控制的同步磁阻电动机的设计与优化,稳态和动态分析

获取原文

摘要

This paper presents innovative results to improve the design and manufacture of high-performance synchronous reluctance machines. These results have been obtained from our research in analyzing and synthesizing advanced control algorithms to promote the competitiveness of three-phase synchronous reluctance machines in electric drives in comparison with permanent-magnet synchronous motors and induction machines. These results have direct application in the design and manufacture of electric- and hybrid-electric drivetrains for light-, medium-, and heavy-duty vehicles. First, we report on the dynamic optimization of medium duty synchronous reluctance machines described by nonlinear differential equations. Second, we describe a new design optimization method, based upon nonlinear electromagnetic analysis, to improve steady-state performance and to enhance the operating envelope. Highly efficient, high-speed synchronous reluctance motors, ranging from 10 kW to 100 kW, were manufactured and tested. The design methods ensure cost-effective production of a new generation of state-of-the-art synchronous reluctance motors. This paper develops a nonlinear model of synchronous reluctance motors that incorporates saturation effects. Kirchhoff's and Newton's laws are used to derive the models. The application of Park's transformation results in a set of differential equations in the rotor reference frame; the q-, d- and zero-axis voltage and current quantities are used in analysis, modeling and design. Robust controllers are developed to guarantee closed-loop system stability and attain the disturbance rejection.
机译:本文提出了创新成果,以改善高性能同步磁阻电机的设计和制造。这些结果是从我们的研究中获得的,这些研究是通过分析和综合先进的控制算法来提高三相同步磁阻电机在电气驱动器中与永磁同步电动机和感应电动机相比的竞争力。这些结果直接应用于轻型,中型和重型车辆的电动和混合动力传动系统的设计和制造。首先,我们报告由非线性微分方程描述的中型同步磁阻电机的动态优化。其次,我们基于非线性电磁分析描述了一种新的设计优化方法,以改善稳态性能并提高工作范围。生产并测试了范围从10 kW到100 kW的高效,高速同步磁阻电机。这些设计方法可确保经济高效地生产新一代最先进的同步磁阻电动机。本文建立了一个包含饱和效应的同步磁阻电动机的非线性模型。基尔霍夫定律和牛顿定律被用来推导模型。 Park变换的应用在转子参考系中产生了一组微分方程。 q,d和零轴电压和电流量用于分析,建模和设计。开发了鲁棒的控制器,以确保闭环系统的稳定性并获得干扰抑制。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号