首页> 外文期刊>Compel >Rotor-design and on-line starting-performance analysis of a synchronous-reluctance motor
【24h】

Rotor-design and on-line starting-performance analysis of a synchronous-reluctance motor

机译:同步磁阻电动机的转子设计和在线启动性能分析

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Purpose - The purpose of this paper is to derive the geometry-based equations for inductances which are used in circuit theory analysis of synchronous reluctance motor (SRM). Transient and steady state performance analyze of SRM by using the 2D time-stepping finite-element method (FEM). Design/methodology/approach - The analytical approach is used to obtain the equations which describe geometry dependent magnetizing inductances of SRM. Transient and steady state performance of the SRM is analyzed by using the 2D time-stepping FEM. The external electric circuit connected with the finite-element model of the SRM geometry allows the study of almost any of the electric and magnetic properties of the machine. Presented SRM model is also connected to the external mechanical loads (friction, rotor inertia and load torque). The use of different materials for the magnetic-pole part of the rotor and for flux barriers was analyzed. The flux barriers in the first SRM rotor were filled with a pure massive electrically conductive ferromagnetic with a proper B-H curve, whereas the rotor magnetic segments were made of non-conductive electric steel described with its B-H curve. The conductive barriers with their end rings form a squirrel cage and allow SRM to start on-line. The flux barriers of the second SRM rotor were made of aluminum but between the second and third flux barrier a massive electrically-conductive ferromagnetic was inserted which during starting-up acted as a part of the squirrel cage. All of the flux barriers of the third SRM rotor were made of electrically-conductive aluminum with iron parts axially laminated. The finite-element SRM models coupled with an electric circuit is also used to evaluate the motor performance at various asynchronous speeds. Findings - Analytical geometry-dependant equations for the d- and q-axis SRM inductances are derived. On the basis of the proposed 2D time-stepping finite-element analysis, the start-up performance for the SRM rotor design using different materials is established. The torque distribution as a function of time at any of the observed asynchronous speeds is not smooth and uniform. It consists of the stator-to-rotor tooth pulsating torque, and the synchronous and asynchronous component. Research limitations/implications - The main disadvantage of analytical geometry-dependant equations for the d- and q-axs SRM inductances is the linearization of any of the ferromagnetic parts. Practical implications - On the basis of the proposed 2D time-stepping finite-element analysis, the start-up performance, asynchronous run and synchronous torque characteristics for the SRM rotor design using different materials are established.rnOriginality/value - The value of the paper is the closed view about happenings in rotor flux barriers of SRM. mostly regarding the time distribution of induced currents in the rotor flux barriers. On the base of 2D time-stepping FEM, the use of different materials for the magnetic-pole part of the rotor and for flux barriers was analyzed.
机译:目的-本文的目的是推导出基于几何的电感方程,该方程用于同步磁阻电机(SRM)的电路理论分析。通过使用二维时步有限元(FEM)方法分析SRM的瞬态和稳态性能。设计/方法/方法-分析方法用于获得描述SRM的几何相关磁化电感的方程。使用2D时步有限元分析了SRM的瞬态和稳态性能。与SRM几何形状的有限元模型相连的外部电路允许研究电机的几乎任何电气和磁性能。提出的SRM模型也连接到外部机械负载(摩擦,转子惯性和负载扭矩)。分析了转子磁极部分和磁通屏障使用不同材料的情况。第一个SRM转子中的磁通势垒充满了具有适当B-H曲线的纯块状导电铁磁,而转子磁段则由描述其B-H曲线的非导电钢制成。带有端环的导电屏障形成一个松鼠笼,并使SRM在线启动。第二SRM转子的磁通屏障由铝制成,但是在第二和第三磁通屏障之间插入了块状导电铁磁,该铁磁在启动期间充当了鼠笼的一部分。第三SRM转子的所有磁通屏障均由导电铝制成,并在轴向上层叠有铁部件。与电路耦合的有限元SRM模型也用于评估各种异步速度下的电机性能。研究结果-得出d轴和q轴SRM电感的解析几何相关方程。基于所提出的二维时步有限元分析,建立了使用不同材料的SRM转子设计的启动性能。在任何观察到的异步速度下,扭矩随时间变化的函数都不平滑且不均匀。它由定子到转子的齿脉动转矩以及同步和异步组件组成。研究的局限性/意义-d轴和q轴SRM电感的解析几何相关方程式的主要缺点是任何铁磁零件的线性化。实际意义-基于提出的2D时间步长有限元分析,建立了使用不同材料的SRM转子设计的启动性能,异步运行和同步转矩特性。rnOriginity / value-本文的价值是关于SRM转子磁通屏障发生情况的封闭视图。主要是关于转子磁通势垒中感应电流的时间分布。基于二维时步有限元,分析了转子磁极部分和磁通势垒使用不同材料的情况。

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