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Two-converters based synchronous operation and control of a brushless doubly-fed reluctance machine

机译:基于两个转换器的无刷双馈磁阻电机的同步运行和控制

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The Brushless Doubly Fed Reluctance Machine (BDFRM) has promising prospect as a commercial machine, since it's a low cost, low maintenance machine. It does not require brushes, slip rings, rotor circuit or magnets. Having a robust winding-free ducted rotor, it can also work with a simpler control technique than a doubly fed induction generator (DFIG). This paper focuses on this side of BDFRM research. An analytical magnetic design process is carried out, and a prototype machine is built based on the proposed optimum design. Subsequently, two -converters based control approach and real-time synchronous operation are investigated. BDFRM analysis for synchronous operation two sets of 3 -phase windings with different numbers of magnetic poles are wound on the stator. The magnetic pole numbers of the windings chosen for this BDFRM. Control of power flow between the windings and the rotor shaft occurs through the salient rotor design, which modulates the magnetic coupling between the windings. Structural FEA has been carried out on several variations to find out the optimized ducted rotor. The current errors are fed as the inputs to the four current PI controllers. The outputs of the current controllers are Vqd8. and Vqd4which are applied to the inverse Park transformation modules. In this test, the BDFRM drive is operated as a synchronous machine at different speed levels with a fixed dc field (4 -pole winding) current to yield optimum torque output. The experimental torque and output power responses. This work discusses the analysis and control approach for a two -converters based synchronous operation of a prototype BDFRM. The motor drive is also tested in real-time.
机译:无刷双馈磁阻电机(BDFRM)由于它是一种低成本,低维护的设备,因此有望成为商用设备。它不需要电刷,集电环,转子电路或磁铁。它具有坚固的无绕组管道转子,与双馈感应发电机(DFIG)相比,其控制技术也更简单。本文着重于BDFRM研究的这一方面。进行了分析磁性设计过程,并根据所提出的最佳设计制造了原型机。随后,研究了基于两个转换器的控制方法和实时同步操作。 BDFRM分析用于同步运行定子上缠绕了两组磁极数不同的三相绕组。为此BDFRM选择的绕组的磁极号。绕组和转子轴之间的功率流的控制通过转子的显着设计来实现,该设计调整了绕组之间的磁耦合。结构有限元分析已进行了多种变体,以找出优化的管道转子。当前误差作为四个当前PI控制器的输入。电流控制器的输出为V qd8 。和V qd4 应用于逆Park转换模块。在该测试中,BDFRM驱动器在具有固定直流磁场(4极绕组)电流的情况下,以不同的速度等级作为同步电机运行,以产生最佳的转矩输出。实验扭矩和输出功率响应。这项工作讨论了原型BDFRM的基于两个转换器的同步操作的分析和控制方法。电机驱动器也进行了实时测试。

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