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Classification Method to Define Synchronization Capability Limits of Line-Start Permanent-Magnet Motor Using Mesh-Based Magnetic Equivalent Circuit Computation Results

机译:使用基于网格的磁等效电路计算结果定义线启动永磁电动机同步能力极限的分类方法

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Line start permanent magnet synchronous motors (LS-PMSM) are energy-efficient synchronous motors that can start asynchronously due to a squirrel cage in the rotor. The drawback, however, with this motor type is the chance of failure to synchronize after start-up. To identify the problem, and the stable operation limits, the synchronization at various parameter combinations is investigated. For accurate knowledge of the operation limits to assure synchronization with the utility grid, an accurate classification of parameter combinations is needed. As for this, many simulations have to be executed, a rapid evaluation method is indispensable. To simulate the dynamic behavior in the time domain, several modeling methods exist. In this paper, a discussion is held with respect to different modeling methods. In order to include spatial factors and magnetic nonlinearities, on the one hand, and to restrict the computation time on the other hand, a magnetic equivalent circuit (MEC) modeling method is developed. In order to accelerate numerical convergence, a mesh-based analysis method is applied. The novelty in this paper is the implementation of support vector machine (SVM) to classify the results of simulations at various parameter combinations into successful or unsuccessful synchronization, in order to define the synchronization capability limits. It is explained how these techniques can benefit the simulation time and the evaluation process. The results of the MEC modeling correspond to those obtained with finite element analysis (FEA), despite the reduced computation time. In addition, simulation results obtained with MEC modeling are experimentally validated.
机译:线路启动永磁同步电动机(LS-PMSM)是节能的同步电动机,由于转子中有鼠笼,因此可以异步启动。但是,这种电动机类型的缺点是启动后可能无法同步。为了确定问题和稳定的运行极限,研究了各种参数组合下的同步。为了准确了解操作限制以确保与公用电网同步,需要对参数组合进行准确分类。因此,必须执行许多模拟,因此快速评估方法必不可少。为了模拟时域中的动态行为,存在几种建模方法。在本文中,对不同的建模方法进行了讨论。为了一方面包括空间因素和磁非线性,另一方面为了限制计算时间,开发了磁等效电路(MEC)建模方法。为了加速数值收敛,应用了基于网格的分析方法。本文的新颖之处在于支持向量机(SVM)的实现,可以将各种参数组合下的仿真结果分类为成功或不成功同步,以定义同步能力极限。解释了这些技术如何使仿真时间和评估过程受益。尽管减少了计算时间,但MEC建模的结果与通过有限元分析(FEA)获得的结果相对应。此外,通过MEC建模获得的仿真结果已通过实验验证。

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