Optimization of cogging torque in interior permanent magnet synchronous motor using optimum magnet v-angle

IF 1.6 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
A. N. Patel, P. J. Doshi, S. C. Mahagoakar, T. H. Panchal
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Abstract

Introduction. At present, the most important requirement in the field of electrical engineering is the better utilization of electrical power, due to its increasing demand and not-so-increasing availability. A permanent magnet synchronous motor (PMSM) is increasingly gaining popularity in various household and industrial applications because of its superior performance compared to conventional electrical motors. Purpose. PMSM is designed based on the selection of various design variables and optimized to fulfill the same. Being superiorly advantageous over other motors, PMSM has the major disadvantage of higher cogging torque. Higher cogging torque generates torque ripple in the PMSM motor leading to various problems like vibration, rotor stress, and noisy operation during starting and steady state. The designer should aim to reduce the cogging torque at the design stage itself for overall better performance. Methods. An interior rotor v-shaped web-type PMSM is designed and its performance analysis is carried out using finite element analysis (FEA). Magnet v-angle is optimized with the objective of cogging torque reduction. Performance comparison is carried out between the optimized motor and the initially designed motor with FEA. Novelty. Magnet v-angle analysis is performed on the same keeping all other parameters constant, to obtain minimum cogging torque. The proposed method is practically viable as it does not incur extra costs and manufacturing complexity. Practical value. It is observed that the magnet v-angle is an effective technique in the reduction of cogging torque. Cogging torque is reduced from 0.554 N×m to 0.452 N×m with the application of the magnet v-angle optimization technique.
利用最优磁体v角优化内置式永磁同步电动机齿槽转矩
介绍。目前,由于电力需求的不断增加和可用性的不稳定,电气工程领域最重要的要求是更好地利用电力。永磁同步电机(PMSM)由于其与传统电机相比具有优越的性能,在各种家庭和工业应用中越来越受欢迎。目的。永磁同步电机的设计是基于各种设计变量的选择,并进行优化以满足这些设计变量。与其他电机相比,永磁同步电机具有优越的优势,其主要缺点是齿槽转矩较高。较高的齿槽转矩会在永磁同步电机中产生转矩脉动,从而导致启动和稳态时的振动、转子应力和噪声等各种问题。设计人员应该在设计阶段就降低齿槽扭矩,以获得更好的整体性能。方法。设计了一种内转子v形腹板型永磁同步电动机,并对其进行了有限元分析。以减小齿槽转矩为目标,对磁体v角进行优化。通过有限元分析对优化后的电机与初始设计的电机进行了性能比较。新鲜事物。在保持所有其他参数不变的情况下,对磁体进行v角分析,以获得最小的齿槽转矩。所提出的方法实际上是可行的,因为它不会产生额外的成本和制造复杂性。实用价值。结果表明,磁体v角是减小齿槽转矩的有效方法。采用磁体v角优化技术,将齿槽转矩从0.554 N×m减小到0.452 N×m。
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来源期刊
Electrical Engineering & Electromechanics
Electrical Engineering & Electromechanics ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
2.40
自引率
50.00%
发文量
53
审稿时长
10 weeks
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