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A Model Based Design Methodology for Variable Flux PMSMs to Obtain Desired Speed-Torque Characteristics

机译:基于模型的可变磁通PMSM的设计方法,以获得所需的速度扭矩特性

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Variable flux permanent magnet synchronous machines (VFPMSMs) have been designed by using finite element analysis (FEA) to evaluate speed-torque capability considering requirement for magnetization state (MS) manipulation. However, due to its unique characteristic to change the MS, numerous combinations of design parameters need to be evaluated to achieve a final design. To accelerate the design process, this paper presents a method that consists of an equivalent magnetic circuit model and a process to obtain magnet width and thickness that satisfy target maximum torque and power factor (P.F.) capability. This model includes magnet operating point analysis under given magnet width and thickness condition to achieve target MS and avoid demagnetization at full load. This analysis provides desired stator magnetomotive force, magnet and stator induced flux linkage. Therefore, expected torque and P.F. capability is calculated. The model is applied to find a smallest magnet volume that satisfies target maximum torque and P.F. capability for several machine designs with a fixed topology, stator diameter and stacking length, under varying magnet thickness and width. Other dimensions, such as stator-teeth width and depth, air gap radius and back yoke width are varied as a function of the magnet dimensions. The method uses a magnet dimension design space, so the preferred motor dimensions with minimum magnet volume can be found. A design that has preferred dimensions obtained from the method is evaluated with FEA. The calculated torque and P.F. capability with FEA shows reasonable agreement with the predicted torque and P.F. obtained by the method.
机译:通过使用有限元分析(FEA)来设计可变磁通永磁同步机(VFPMSMS)以评估考虑磁化状态(MS)操纵要求的速度扭矩能力。然而,由于其独特的特征来改变MS,需要评估设计参数的许多组合以实现最终设计。为了加速设计过程,本文提出了一种由等效磁路模型和获得满足目标最大扭矩和功率因数(P.F.)能力的磁体宽度和厚度的方法。该模型包括在给定的磁体宽度和厚度条件下的磁铁操作点分析,以实现目标MS,并避免在满载时的退磁。该分析提供了所需的定子磁带力,磁铁和定子诱导的磁通连杆。因此,预期的扭矩和p.f.能力计算。该模型用于找到满足目标最大扭矩和P.F的最小磁体体积。具有固定拓扑,定子直径和堆叠长度的多种机器设计的能力,在不同的磁体厚度和宽度下。其他尺寸,例如定子齿宽度和深度,气隙半径和后轭宽度随磁体尺寸的函数而变化。该方法使用磁铁尺寸设计空间,因此可以找到具有最小磁体体积的优选电动机尺寸。使用FEA评估具有从该方法获得的优选尺寸的设计。计算的扭矩和p.f.与FEA的能力显示了与预测的扭矩和P.F的合理协议。通过该方法获得。

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