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Investigation of dynamic control characteristics of a fractional-slot concentrated-winding interior permanent magnet synchronous machine

机译:分数槽集中绕组内部永磁同步电机的动态控制特性研究

摘要

This thesis investigates the dynamic control performances of a 14-pole/18-slot fractional slot concentrated winding (FSCW) interior permanent magnet synchronous machine (FSCW IPMSM). The machine was run with two commonly used control techniques: Field Oriented Control (FOC) and Direct Torque and Flux Control (DTFC). The FSCW IPMSM under consideration was previously designed and constructed at the University of New South Wales (UNSW) to achieve a high torque/high power density, high efficiency, a very wide (> 10:1) constant power speed range and very low cogging torque. The key favourable characteristic of an FSCW is the short end windings, which results in low copper loss and more compact design compared to its distributed winding counterpart. The other benefit of this particular 14-pole/18-slot FSCW IPMSM design includes some saliency ratio, which is desirable for sensorless control, compared to other CW permanent magnet machines. Nevertheless, this type of machine has so far been only investigated in terms of steady state performance; the dynamic control performance has not been studied yet. The major objective of this study is to investigate the dynamic control performances of the 14/18 FSCW IPMSM machine while running with model based controllers such as the FOC and DTFC, to study their limitations and to propose improvements of these controllers.The FOC was first implemented in the prototype FSCW machine using standard distributed windings IPMSM mathematical model. A number of issues associated with the FSCW IPMSM under FOC were detected and investigated thoroughly. The issues were resolved by implementing a closed-loop rotor position compensator and a new voltage compensation scheme.It is believed that this thesis, for the first time, applied the Sensorless Direct Torque and Flux Control (DTFC) to a FSCW IPMSM. The performances of the FSCW-IPMSM under DTFC at very low speed, however, were not satisfactory. To improve the performance of the DTFC at low speed operation, a closed-loop extended flux linkage model is proposed. Although it was proven that the proposed closed-loop extended flux linkage DTFC is superior to the open-loop DTFC, the extremely low speed operation still is not achieved. To elevate the performance of the sensorless DTFC drive in extremely low speed religion, including standstill, a sensorless DTFC based on high frequency injection method for the FSCW IPMSM is implemented in this thesis.
机译:本文研究了14极/ 18槽分数槽集中绕组(FSCW)内部永磁同步电机(FSCW IPMSM)的动态控制性能。该机器使用两种常用的控制技术运行:磁场定向控制(FOC)和直接转矩与磁通控制(DTFC)。所考虑的FSCW IPMSM先前是在新南威尔士大学(UNSW)设计和制造的,以实现高扭矩/高功率密度,高效率,非常宽的(> 10:1)恒定功率速度范围和非常低的齿槽效应扭矩。 FSCW的关键有利特性是短端绕组,与分布式绕组相比,它具有较低的铜损和更紧凑的设计。与其他CW永磁电机相比,这种特殊的14极/ 18槽FSCW IPMSM设计的另一个好处包括显着比,这是无传感器控制所需要的。然而,迄今为止,仅根据稳态性能对这种类型的机器进行了研究。动态控制性能尚未研究。这项研究的主要目的是研究14/18 FSCW IPMSM机器在与基于模型的控制器(例如FOC和DTFC)一起运行时的动态控制性能,以研究它们的局限性并提出对这些控制器的改进建议。使用标准分布式绕组IPMSM数学模型在FSCW原型机中实现。发现并彻底调查了FOC下与FSCW IPMSM相关的许多问题。通过实施闭环转子位置补偿器和新的电压补偿方案解决了这些问题。相信该论文首次将无传感器直接转矩和磁通控制(DTFC)应用于FSCW IPMSM。但是,在DTFC下FSCW-IPMSM在非常低的速度下的性能并不令人满意。为了提高DTFC在低速运行时的性能,提出了一种闭环扩展磁链模型。尽管已证明所提出的闭环扩展磁链DTFC优于开环DTFC,但仍无法实现极低速运行。为了提高无传感器DTFC驱动器在极低速状态下(包括静止状态)的性能,本文针对FSCW IPMSM实现了基于高频注入方法的无传感器DTFC。

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