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Control of a fractional-slot, concentrated-wound interior permanent magnet generator for direct-drive wind generation applications

机译:用于直接驱动风力发电应用的小槽集中缠绕式内部永磁发电机的控制

摘要

This thesis assesses improvements to two types of control for a novel interior permanent magnet (PM) synchronous generator with fractional-slot, concentrated-wound stator designed for direct-drive wind energy conversion. The two control techniques assessed are a) field oriented control using a back-to-back converter arrangement and b) a current controller with a rectifier-connected boost converter. These were chosen to understand the potential and the limitations of the generator and its control. Modifications to the control techniques are proposed to improve the generator efficiency, the dynamic performance in the flux-weakening range and the torque ripple performance. The adequacy of the distributed-wound PM synchronous machine model for steady-state and dynamic control of this generator was experimentally validated under field oriented control using a back-to-back converter connected to the grid. The effectiveness of the existing current trajectory controls on the efficiency of the new generator was evaluated. A new flux-prioritized maximum torque per ampere technique which is independent of speed-dependent predefined trajectories was introduced, and a similar efficiency improvement was gained as the conventional loss minimization method in the partial load range. Thus, the control model validation and efficiency imrpovement of the new generator are the primary contributions.The dynamic performance of the generator, directly driven by a non-pitchable wind turbine emulator was investigated from cut-in speed to cut-out speed using maximum power point tracking and then constant power control above rated speed. A significant contribution was done in the power control above base wind speed that was achieved by utilizing the extended flux-weakening capability of the machine with its wide constant power-speed range. High torque ripple was observed when operated with a rectifier and boost converter using boost converter inductor current control. A new direct torque control technique using a machine rotor position based torque estimator was proposed to minimize this torque ripple. Eventhough the reduced torque ripple is still higher than that with back-to-back converter, the achieved ripple reduction is significant. The control of generator speed under each method is also demonstrated. Although the new method gives a faster speed dynamics than the conventional method, it shows slower speed response than that of back-to-back converter control. However, the significance of the study using a diode rectifier-connected boost converter control is highlighted with the achieved torque ripple minimization and performance enhancement of the generator. This study is expected to open new investigations in flux-weakening control of the PM generators using rectifier-connected boost converter. In this thesis, back to back converter control is demonstrated in order to optimally control the novel generator under the field oriented control, energy efficient current control and power control together with voltage control operating above rated speed. Torque ripple minimization of the generator is also presented when used with a diode rectifier-connected boost converter control.
机译:本文评估了一种新颖的内部永磁同步发电机的两种控制方式的改进,该同步发电机采用分数槽,集中绕组定子设计,用于直接驱动风能转换。评估的两种控制技术是:a)使用背对背转换器的磁场定向控制; b)带有整流器连接的升压转换器的电流控制器。选择这些是为了了解发电机及其控制的潜力和局限性。提出了对控制技术的修改,以提高发电机效率,弱磁通范围内的动态性能以及转矩脉动性能。使用连接到电网的背靠背变流器,在磁场定向控制下,通过实验验证了分布式绕组永磁同步电机模型对发电机的稳态和动态控制的适当性。评估了现有轨迹控制对新型发电机效率的有效性。引入了一种新的磁通优先的每安培最大转矩技术,该技术与速度相关的预定轨迹无关,并且在部分负载范围内,与传统的损耗最小化方法相比,效率得到了类似的提高。因此,新发电机的控制模型验证和效率改进是主要贡献。研究了由无桨距风力涡轮机模拟器直接驱动的发电机动态性能,使用最大功率从切入速度到切出速度进行了研究。点跟踪,然后在额定速度以上进行恒定功率控制。通过在较宽的恒定功率速度范围内利用机器扩展的磁通减弱功能,在​​高于基本风速的功率控制方面做出了重大贡献。当使用升压转换器电感器电流控制的整流器和升压转换器运行时,观察到高转矩纹波。提出了一种新的直接转矩控制技术,该技术使用基于电机转子位置的转矩估计器来最大程度地减小该转矩波动。尽管减小的转矩脉动仍然比背靠背转换器高,但实现的脉动减小仍然非常重要。还说明了每种方法下的发电机转速控制。尽管新方法比常规方法具有更快的速度动态特性,但与背靠背转换器控制相比,它显示出较慢的速度响应。但是,通过使转矩脉动最小化和发电机性能提高,突出了使用二极管整流器升压转换器控制进行研究的意义。预期该研究将为使用整流器连接的升压转换器的PM发电机的磁通弱化控制开辟新的研究领域。本文提出了背靠背变流器控制,以在磁场定向控制,高效节能电流控制和功率控制以及在额定转速以上运行的电压控制下最优控制新型发电机。当与二极管整流器相连的升压转换器控制一起使用时,还可以减小发电机的转矩脉动。

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