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Modeling and Optimization of Brushless Doubly-Fed Induction Machines Using Computationally Efficient Finite-Element Analysis

机译:基于计算有效有限元分析的无刷双馈感应电机建模与优化

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摘要

The air-gap magnetic fields of brushless doubly fed induction machines (DFIMs) are complicated because of the cross-coupling between two stator fields via a special nested-loop rotor. Compared with classical analytical models, transient finite-element (FE) modeling is easier to evaluate the machine performance taking saturation into account. However, it is not efficient to evaluate lots of candidates in a large design space using transient FE models considering the time cost. In the transient simulation, the induced rotor currents are calculated by solving several time differential equations using the backward differentiation formula. This paper presents a computationally efficient FE analysis for brushless DFIMs. The induced rotor currents can be calculated using a single magnetostatic FE simulation. The average torque, losses, and efficiency can also be predicted using one magnetostatic solution. One candidate design can be evaluated within 1 or 2 min on a personal workstation. The efficient analysis is validated by the transient FE results. The presented model is applied to the optimization of a prototype. The influence of two construction variables, namely, pole-pair combinations and the number of loops per nest, is studied. One pole-pair combination is selected for manufacturing a prototype.
机译:无刷双馈感应电机(DFIM)的气隙磁场非常复杂,这是因为两个定子磁场之间通过特殊的套环式转子进行了交叉耦合。与经典分析模型相比,瞬态有限元(FE)建模更容易在考虑饱和的情况下评估机器性能。但是,考虑到时间成本,使用瞬态有限元模型在大型设计空间中评估大量候选对象效率不高。在瞬态仿真中,通过使用后向微分公式求解几个时间微分方程来计算感应转子电流。本文提出了一种计算有效的无刷DFIM有限元分析。可以使用单个静磁有限元仿真来计算感应的转子电流。平均扭矩,损耗和效率也可以使用一种静磁解决方案进行预测。可以在个人工作站上1到2分钟内评估一种候选设计。瞬态有限元分析结果验证了有效分析。所提出的模型被应用于原型的优化。研究了两个构造变量的影响,即极对组合和每个套环的数量。选择一个极对组合来制造原型。

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