SIMULATION AND EXPERIMENTAL INVESTIGATION OF DUAL THREE-PHASE BLDC MOTOR OPERATION AT IMBALANCED MODULAR LOADING

Q3 Energy
І.Z. Shchur, В.M. Kharchyshyn, V. Turkovskyi
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引用次数: 0

Abstract

Electric machines built according to the modular principle – with several three-phase windings on a stator – are a new direction of modern electromechanics, because they have a number of advantages compared to traditional single-winding machines. Among these benefits, the most important are increased efficiency and fault tolerance, which is especially important for self-powered electric vehicles. However, the presence of a mutual magnetic coupling between the modules, as well as their unequal electrical load, amplify the electromagnetic torque ripple inherent in one or another electric drive system. In this work, the electromagnetic torque ripples in a dual three-phase (DTP) brushless DC motor (BLDCM) under different loads of its modules were investigated for the cases of absence and presence of mutual magnetic coupling between armature winding sets and in the cases of the drive operation in open and closed control systems. The research was carried out by means of simulation in the Matlab/Simulink environment on a circular model of real mock-up sample of DTP permanent magnet machine developed based on the results of its magnetic field simulation using the finite element method. Adequacy of simulation results is confirmed by experimental investigation. The results of the DTP BLDCM simulation studies showed an increase in the relative electromagnetic torque ripples of individual modules due to both the presence of magnetic coupling between winding sets and the deviation from their equal loading. However, at the level of the whole DTP BLDCM, a significant mutual compensation the electromagnetic torque ripples of the modules is shown, especially if they are magnetically coupled. The presence of closed-loop control systems of individual modules significantly reduces the electromagnetic torque ripples caused by different loading of the modules, especially in the case of magnetically uncoupled modules. References 26, figures 7, tables 3.
模块负载不平衡时双三相BLDC电动机运行的仿真与实验研究
根据模块化原理制造的电机——定子上有几个三相绕组——是现代机电的一个新方向,因为与传统的单绕组电机相比,它们具有许多优点。在这些好处中,最重要的是提高了效率和容错能力,这对自供电电动汽车尤为重要。然而,模块之间相互磁耦合的存在,以及它们不相等的电负载,放大了一个或另一个电驱动系统中固有的电磁转矩纹波。在这项工作中,研究了双三相(DTP)无刷直流电机(BLDCM)在不同模块负载下,在电枢绕组组之间不存在和存在相互磁耦合的情况下,以及在开闭控制系统中驱动操作的情况下的电磁转矩纹波。在Matlab/Simulink环境下,对基于有限元法对DTP永磁电机磁场模拟结果开发的实际样机的圆形模型进行了仿真研究。实验研究证实了模拟结果的充分性。DTP无刷直流电机仿真研究的结果表明,由于绕组组之间存在磁耦合和偏离其相等负载,单个模块的相对电磁转矩纹波增加。然而,在整个DTP BLDCM的水平上,显示出模块的电磁转矩纹波的显著相互补偿,特别是如果它们是磁耦合的。单个模块的闭环控制系统的存在显著减少了由模块的不同负载引起的电磁转矩波纹,特别是在磁性解耦模块的情况下。参考文献26,图7,表3。
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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来源期刊
Technical Electrodynamics
Technical Electrodynamics Energy-Energy Engineering and Power Technology
CiteScore
1.80
自引率
0.00%
发文量
72
审稿时长
4 weeks
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