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Finite-element analysis of eddy currents in the form-wound multi-conductor windings of electrical machines

机译:电机绕线式多导体绕组中涡流的有限元分析

摘要

The aim of this research was to develop comprehensive numerical models for considering eddy currents and circulating currents in the form-wound multi-conductor windings of electrical machines and to study the effects of eddy currents and circulating currents. Time-harmonic and time-discretised finite-element methods were developed. The methods were applied to the stator winding of a 1250-kW cage induction motor and in both the stator and rotor windings of a 1.7-MW doubly-fed induction generator (DFIG). The series and parallel connections of the winding were taken into account. The Newton-Raphson iteration method was used to solve the system of non-linear equations. In time-harmonic FEM, the system of equations was solved iteratively just once for the steady-state solution. In time-discretised FEM, the system of equations was solved iteratively at every time step. The backward Euler method was used for the time discretisation. The radial distance of the stator bars from the air gap has a remarkable effect on losses and was found to be an important design parameter. A significant amount of stator-winding eddy-current loss can be reduced by considering this design parameter. A transposition of the conductors was implemented to reduce the circulating currents between the parallel stator conductors. The eddy-current effects in the form-wound multi-conductor windings of electrical machines were studied for both a sinusoidal and non-sinusoidal supply. A pulse-width-modulated (PWM) voltage supply was achieved by sinus triangle comparison and used as a non-sinusoidal supply for the machine. A PWM supply produced a significant amount of additional eddy-current losses in the form-wound stator winding of the cage induction motor when compared to the sinusoidal supply. The fundamental harmonic voltages of the sinusoidal and PWM supplies were equal for comparing the results. Similar sinusoidal and PWM voltages were used to supply the rotor winding of the DFIG as well. The additional eddy-current losses in the form-wound rotor winding as a result of the PWM supply were small.
机译:这项研究的目的是开发综合的数值模型,以考虑电机的绕线多导体绕组中的涡流和循环电流,并研究涡流和循环电流的影响。提出了时谐和时离散的有限元方法。该方法应用于1250 kW笼式感应电动机的定子绕组,以及1.7 MW双馈感应发电机(DFIG)的定子和转子绕组。考虑了绕组的串联和并联。牛顿-拉夫森迭代法用于求解非线性方程组。在时谐有限元法中,方程组只针对稳态解迭代一次。在时间离散的有限元法中,方程组在每个时间步都迭代求解。后向欧拉方法用于时间离散化。定子条距气隙的径向距离对损耗有显着影响,并且被发现是重要的设计参数。通过考虑该设计参数,可以减少大量的定子绕组涡流损耗。进行导体的换位以减小并联定子导体之间的循环电流。对于正弦和非正弦电源,都研究了电机的绕制多导体绕组中的涡流效应。通过正弦三角形比较获得了脉宽调制(PWM)电压电源,并将其用作机器的非正弦电源。与正弦电源相比,PWM电源在笼型感应电动机的绕线定子绕组中产生了大量额外的涡流损耗。为了比较结果,正弦和PWM电源的基本谐波电压相等。类似的正弦波和PWM电压也用于为DFIG的转子绕组供电。 PWM供电导致的绕线转子绕组中的额外涡流损耗很小。

著录项

  • 作者

    Islam Mohammad Jahirul;

  • 作者单位
  • 年度 2010
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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