Design, Analysis, and Control ofa Hybrid Field-Controlled Axial-Flux Permanent-Magnet Motor.pdfVIP

Design, Analysis, and Control ofa Hybrid Field-Controlled Axial-Flux Permanent-Magnet Motor.pdf

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Design, Analysis, and Control ofa Hybrid Field-Controlled Axial-Flux Permanent-Magnet Motor

78 IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, VOL. 57, NO. 1, JANUARY 2010 Design, Analysis, and Control of a Hybrid Field-Controlled Axial-Flux Permanent-Magnet Motor Metin Aydin, Member, IEEE, Surong Huang, Associate Member, IEEE, and Thomas A. Lipo, Fellow, IEEE Abstract—This paper presents the design, analysis, control, and experimental evaluation of an innovative field-controlled axial-flux surface-mounted permanent-magnet machine. Topology and de- sign equations, as well as an optimized design study, are attained. The machine is investigated in detail using finite-element analysis, and a prototype machine is built. In order to evaluate the new axialflux machine topology, an experimental system setup is de- vised and discussed. The experimental results of the prototype machine and a comparison between the analysis and test results are also presented. Index Terms—Axial-flux machines, brushless machines, brush- less rotating machines, electric machines, finite-element analysis (FEA), finite-element method, permanent-magnet (PM) machines, PM motor. NOMENCLATURE AC Vector potential. Bcr Flux density in the rotor core. Bcs Flux density in the stator core. Bg Amplitude of the airgap flux density. Bg/PM Peak value of airgap flux density created by a permanent-magnet (PM) pole. Bg/DC Peak value of Bg component created by a dc field current. Bg-PM/PM Peak value of Bg created by a PM in front of the PM pole. Bg-iron/PM Peak value of Bg created by a PM in front of an iron pole. Bg-PM/DC Peak value of Bg created by a dc field in front of the PM pole. Bg-iron/DC Peak value of Bg created by a dc field in front of the iron pole. Di Diameter of the machine inner surface. Do Diameter of the machine outer surface. Manuscript received March 1, 2009; revised July 15, 2009. First published August 7, 2009; current version published December 11, 2009. This work was supported by the member companies of the Wisconsin Electrical Machines and Power Electronics Consortium. M. Aydin is w

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