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dc.contributor.authorHamouda, M.en
dc.contributor.authorMenaem, A. A.en
dc.contributor.authorRezk, H.en
dc.contributor.authorIbrahim, M. N.en
dc.contributor.authorSzámel, L.en
dc.date.accessioned2021-08-31T15:00:50Z-
dc.date.available2021-08-31T15:00:50Z-
dc.date.issued2020-
dc.identifier.citationAn improved indirect instantaneous torque control strategy of switched reluctance motor drives for light electric vehicles / M. Hamouda, A. A. Menaem, H. Rezk, et al. — DOI 10.1016/j.egyr.2020.11.142 // Energy Reports. — 2020. — Vol. 6. — P. 709-715.en
dc.identifier.issn23524847-
dc.identifier.otherFinal2
dc.identifier.otherAll Open Access, Hybrid Gold, Green3
dc.identifier.otherhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85098875252&doi=10.1016%2fj.egyr.2020.11.142&partnerID=40&md5=a25c2ffc7887112221af91b1f4974cc9
dc.identifier.urihttp://elar.urfu.ru/handle/10995/101951-
dc.description.abstractThe switched reluctance motors (SRMs) are powerful alternatives for electric vehicles (EVs). However, the high torque ripple is the main obstacle for their acceptance in high-performance applications. This paper introduces an improved indirect instantaneous torque control (IITC) strategy of SRMs for EVs. It aims to achieve the vehicle requirements including maximum torque per ampere (MTPA), minimum torque ripple, high efficiency, and extended speed range. First, a simple analytical formulation that determines the most efficient turn-on angle for torque production is developed. Second, A modified torque sharing function (TSF) is introduced to compensate for torque tracking errors. To accurately represent the SRM, its magnetic characteristics are calculated using finite element method (FEM). They are employed to build machine model and implement the required transformations. Finally, the particle swarm optimization (PSO) algorithm is adopted to determine the best control parameters for the conventional IITC. This is done basically for comparison and verification purposes. The results show the feasibility and effectiveness of the proposed control over extended speed range. © 2020 The Author(s)en
dc.format.mimetypeapplication/pdfen
dc.language.isoenen
dc.publisherElsevier Ltden
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.sourceEnergy Rep.2
dc.sourceEnergy Reportsen
dc.subjectDIRECT INSTANTANEOUS TORQUE CONTROLen
dc.subjectMTPAen
dc.subjectOPTIMIZATIONen
dc.subjectSWITCHED RELUCTANCE MOTORen
dc.subjectSWITCHING ANGLESen
dc.subjectTSFen
dc.subjectELECTRIC DRIVESen
dc.subjectELECTRIC MACHINE CONTROLen
dc.subjectLIGHT ELECTRIC VEHICLESen
dc.subjectPARTICLE SWARM OPTIMIZATION (PSO)en
dc.subjectTORQUEen
dc.subjectTORQUE CONTROLen
dc.subjectTRACTION MOTORSen
dc.subjectHIGH PERFORMANCE APPLICATIONSen
dc.subjectINSTANTANEOUS TORQUE CONTROLen
dc.subjectMAGNETIC CHARACTERISTICen
dc.subjectMAXIMUM TORQUE PER AMPERE (MTPA)en
dc.subjectPARTICLE SWARM OPTIMIZATION ALGORITHMen
dc.subjectSWITCHED RELUCTANCE MOTORen
dc.subjectSWITCHED RELUCTANCE MOTOR DRIVESen
dc.subjectTORQUE SHARING FUNCTIONen
dc.subjectRELUCTANCE MOTORSen
dc.titleAn improved indirect instantaneous torque control strategy of switched reluctance motor drives for light electric vehiclesen
dc.typeArticleen
dc.typeinfo:eu-repo/semantics/articleen
dc.typeinfo:eu-repo/semantics/publishedVersionen
dc.identifier.doi10.1016/j.egyr.2020.11.142-
dc.identifier.scopus85098875252-
local.contributor.employeeHamouda, M., Electrical Engineering Department, Mansoura University, Mansoura, 35516, Egypt, Department of Electric Power Engineering, Budapest University of Technology and Economics, Budapest, H-1521, Hungary
local.contributor.employeeMenaem, A.A., Department of Automated Electrical Systems, Ural Power Engineering Institute, Ural Federal University, Yekaterinburg, 620002, Russian Federation
local.contributor.employeeRezk, H., College of Engineering at Wadi Addawaser, Prince Sattam Bin Abdulaziz University, Wadi Aldawaser, 11991, Saudi Arabia, Electrical Engineering Department, Faculty of Engineering, Minia University, Minia, 61111, Egypt
local.contributor.employeeIbrahim, M.N., Electrical Engineering Department, Kafrelshiekh University, Kafr el-Sheikh33511, Egypt, Department of Electromechanical, Systems and Metal Engineering, Ghent University, Ghent, 9000, Belgium, FlandersMake@UGent – corelab EEDT-MP, Leuven, 3001, Belgium
local.contributor.employeeSzámel, L., Department of Electric Power Engineering, Budapest University of Technology and Economics, Budapest, H-1521, Hungary
local.description.firstpage709-
local.description.lastpage715-
local.volume6-
dc.identifier.wos000604392100099-
local.contributor.departmentElectrical Engineering Department, Mansoura University, Mansoura, 35516, Egypt
local.contributor.departmentDepartment of Electric Power Engineering, Budapest University of Technology and Economics, Budapest, H-1521, Hungary
local.contributor.departmentDepartment of Automated Electrical Systems, Ural Power Engineering Institute, Ural Federal University, Yekaterinburg, 620002, Russian Federation
local.contributor.departmentCollege of Engineering at Wadi Addawaser, Prince Sattam Bin Abdulaziz University, Wadi Aldawaser, 11991, Saudi Arabia
local.contributor.departmentElectrical Engineering Department, Faculty of Engineering, Minia University, Minia, 61111, Egypt
local.contributor.departmentElectrical Engineering Department, Kafrelshiekh University, Kafr el-Sheikh33511, Egypt
local.contributor.departmentDepartment of Electromechanical, Systems and Metal Engineering, Ghent University, Ghent, 9000, Belgium
local.contributor.departmentFlandersMake@UGent – corelab EEDT-MP, Leuven, 3001, Belgium
local.identifier.pure2d9c8d45-db18-40c8-bc07-3bef2193ac6fuuid
local.identifier.pure20452434-
local.identifier.eid2-s2.0-85098875252-
local.identifier.wosWOS:000604392100099-
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