Title :
Application of bi-state magnetic material to automotive offset-coupled IPM starter/alternator machine
Author :
El-Refaie, Ayman M. ; Manzke, Russell ; Jahns, Thomas M.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Wisconsin, Madison, WI, USA
Abstract :
This paper investigates a new approach to designing high-speed interior permanent-magnet (IPM) synchronous machines using a bi-state soft magnetic material. The bi-state material can have its normally high magnetic permeability permanently reduced in localized regions to that of air by means of heat treatment. This new work significantly expands a previous investigation by considering offset-coupled IPM machines that make it possible to significantly increase the rotor speed while retaining all of the other specifications of the 6-kW starter/alternator application. Lumped-parameter models, Monte Carlo optimization, and both electromagnetic and structural finite-element analysis are used to develop new offset-coupled IPM machine designs with the new material at speeds of 40 000 r/min or higher. Results from this work demonstrate that the bi-state material offers a promising approach for designing high-speed IPM machines that offer weight and volume advantages compared to their lower speed counterparts at comparable system cost.
Keywords :
Monte Carlo methods; alternators; finite element analysis; magnetic permeability; optimisation; permanent magnet machines; soft magnetic materials; synchronous machines; 6 kW; Monte Carlo optimization; automotive offset-coupled IPM machine designs; bi-state material; electromagnetic finite element analysis; interior permanent-magnet synchronous machines; lumped-parameter models; magnetic permeability; rotating machine mechanical factors; rotor speed; soft magnetic material; starter/alternator application; structural finite element analysis; Alternators; Automotive engineering; Electromagnetic modeling; Heat treatment; Magnetic materials; Monte Carlo methods; Permeability; Rotors; Soft magnetic materials; Synchronous machines; Magnetic materials; PM; machines; permanent-magnet; rotating machine mechanical factors; synchronous machines;
Journal_Title :
Industry Applications, IEEE Transactions on
DOI :
10.1109/TIA.2004.827470