无刷双馈异步发电机中不等匝正弦绕线转子绕组的设计特性

S. M. Seyedi, D. Talebi, Mesaad AlBader, H. Toliyat
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引用次数: 1

摘要

无刷双馈电机(BDFM)因其减少维护、运行可靠等优点,成为风力发电机组等变频调速系统的重要目标应用之一。bdfm有两个定子绕组,每个绕组都有不同的极数,其中一个直接连接到电网,而另一个通过转换器用于控制同步模式操作。然而,转子绕组需要特殊的线圈配置来调制由于定子绕组产生的磁动势(mmf)并间接耦合它们。最近,有研究表明,多层绕线转子绕组比嵌套环转子结构更有效地实现了BDFM设计,这主要是因为多层绕线转子结构制造简单,谐波含量低。本文提出了一种基于多重变换向量空间的绕线转子无刷双馈感应发电机模型。针对功率绕组、控制绕组、二者的相互作用及其调制的不同项,建立了一种新的闭式电磁转矩方程。在此基础上,对不同转子绕组情况进行了有限元仿真,分析了非等匝绕组对电磁转矩产生、不平衡感应电压和铜利用率等关键参数的影响。结果表明,在低不平衡电压和高转矩密度的多层转子绕组中,正弦分布绕组是同步运行所必需的。
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Design Characteristics of Unequal-Turn Sinusoidal Wound Rotor Winding in Brushless Doubly-Fed Induction Generator
Brushless doubly-fed machine (BDFM) is one of the crucial target applications in variable frequency speed regulation systems such as wind turbines due to reducing required maintenance, reliable operation, etc. BDFMs have two stator windings, each with different pole counts where one is directly connected to the grid while the other is used to control synchronous mode operation through a converter. However, the rotor windings need a particular configuration of coils to modulate both magnetomotive forces (MMFs) due to the stator windings and indirectly couple them. Recently, it has been shown that the multi-layer wound rotor winding enables a more efficient BDFM design than nested-loop rotor structures, principally because of simple manufacturing and low harmonic contents due to the winding configuration. This paper presents a model for a wound-rotor brushless doubly-fed induction generator (BDFIG) using a multiple transformation vector space. A new closed-form electromagnetic (EM) torque equation is developed regarding different terms on the power winding, control winding, the interaction of these two, and their modulation. Furthermore, finite element analysis (FEA) simulations are provided for different rotor winding cases to evaluate the analytical equation and the effect of unequal-turn winding on critical parameters such as EM torque production, the unbalanced induced voltage, and the copper utilization. The results show that the sinusoidally distributed winding is necessary for synchronous operation in multilayer rotor windings with lower unbalanced voltage and higher torque density.
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