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Optimization of IPMSM Barrier Shape Based on Neural Network

  • Sungkyunkwan University
  • Chosun University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

This paper presents an Interior Permanent Magnet Machine(IPMSM) barrier shape optimization method using a neural network. To express the detailed shape of the barrier, the region of the barrier is divided into small parts. And the material property of these parts is set as a variable. As the number of the variable is increased, the neural network is applied to express the complex relationship of variables an performance of the machine. The neural network is trained with random datasets generated with Finite Element Analysis (FEA). These random datasets are generated by assigning the materials of each part randomly between 'Core' and 'Air'. In this paper, the average torque of IPMSM is set as optimizing value. A neural network is trained with input data of materials and output of average torque of IPMSM model. Structure of the neural network is decided by considering the fitness of test dataset. Using this trained neural network, the average torque of every possible barrier shape can be guessed. By examining the shape with high torque output, shape characteristics are identified,x and optimized model is suggested.

Original languageEnglish
Title of host publication2019 22nd International Conference on Electrical Machines and Systems, ICEMS 2019
PublisherInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronic)9781728133980
DOIs
StatePublished - Aug 2019
Event22nd International Conference on Electrical Machines and Systems, ICEMS 2019 - Harbin, China
Duration: 11 Aug 201914 Aug 2019

Publication series

Name2019 22nd International Conference on Electrical Machines and Systems, ICEMS 2019

Conference

Conference22nd International Conference on Electrical Machines and Systems, ICEMS 2019
Country/TerritoryChina
CityHarbin
Period11/08/1914/08/19

Keywords

  • Neural Network
  • Optimization
  • Permanent magnet machines

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