Advances in Rotating Electric Machines : Volume 2

It is difficult to imagine a modern society without rotating electric machines. Their use has been increasing not only in the traditional fields of application but also in more contemporary fields, including renewable energy conversion systems, electric aircraft, aerospace, electric vehicles, unmann...

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Bibliographic Details
Other Authors: Cruz, Sérgio (Editor)
Format: Book Chapter
Published: Basel, Switzerland MDPI - Multidisciplinary Digital Publishing Institute 2020
Subjects:
DOE
CMV
PWM
Online Access:Get Fullteks
DOAB: description of the publication
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020 |a books978-3-03936-841-9 
020 |a 9783039368402 
020 |a 9783039368419 
024 7 |a 10.3390/books978-3-03936-841-9  |c doi 
041 0 |a English 
042 |a dc 
072 7 |a TBX  |2 bicssc 
100 1 |a Cruz, Sérgio  |4 edt 
700 1 |a Cruz, Sérgio  |4 oth 
245 1 0 |a Advances in Rotating Electric Machines : Volume 2 
260 |a Basel, Switzerland  |b MDPI - Multidisciplinary Digital Publishing Institute  |c 2020 
300 |a 1 electronic resource (398 p.) 
506 0 |a Open Access  |2 star  |f Unrestricted online access 
520 |a It is difficult to imagine a modern society without rotating electric machines. Their use has been increasing not only in the traditional fields of application but also in more contemporary fields, including renewable energy conversion systems, electric aircraft, aerospace, electric vehicles, unmanned propulsion systems, robotics, etc. This has contributed to advances in the materials, design methodologies, modeling tools, and manufacturing processes of current electric machines, which are characterized by high compactness, low weight, high power density, high torque density, and high reliability. On the other hand, the growing use of electric machines and drives in more critical applications has pushed forward the research in the area of condition monitoring and fault tolerance, leading to the development of more reliable diagnostic techniques and more fault-tolerant machines. This book presents and disseminates the most recent advances related to the theory, design, modeling, application, control, and condition monitoring of all types of rotating electric machines. 
540 |a Creative Commons  |f https://creativecommons.org/licenses/by/4.0/  |2 cc  |4 https://creativecommons.org/licenses/by/4.0/ 
546 |a English 
650 7 |a History of engineering & technology  |2 bicssc 
653 |a core saturation 
653 |a cross-coupling inductance 
653 |a wound synchronous machines (WSM) 
653 |a signal injection 
653 |a position sensorless 
653 |a high-frequency model 
653 |a hybrid permanent magnet 
653 |a interior permanent magnet (IPM) machine 
653 |a magnet-axis-shifted 
653 |a reluctance torque 
653 |a Sensorless 
653 |a induction motors 
653 |a H_infinity 
653 |a drives 
653 |a vector control 
653 |a experimental implementation 
653 |a direct torque control 
653 |a duty cycle control 
653 |a harmonic currents 
653 |a six-phase induction motor 
653 |a torque ripple 
653 |a interior permanent magnet synchronous motor (IPMSM) 
653 |a sensorless control 
653 |a adaptive algorithm 
653 |a super-twisting sliding mode observer (STO) 
653 |a phase-locked loop (PLL) 
653 |a permanent-magnet vernier machine 
653 |a in-wheel direct-drive 
653 |a outer rotor 
653 |a overhang 
653 |a soft magnetic composite 
653 |a reaction sphere 
653 |a spherical motor 
653 |a structural design 
653 |a torque density optimization 
653 |a support vector machines 
653 |a finite element method 
653 |a induction motor 
653 |a smart-sensor 
653 |a stray flux 
653 |a time-frequency transforms 
653 |a wavelet entropy 
653 |a harmonic modeling method 
653 |a magnetic-geared machine 
653 |a hybrid electric vehicle 
653 |a magnetic field 
653 |a electromagnetic performance 
653 |a analytical modeling 
653 |a brushless DC motor 
653 |a commutation torque ripple 
653 |a back electromotive force 
653 |a multiphase machines 
653 |a fault-tolerance 
653 |a dual-channel 
653 |a brushless direct current motor with permanent magnet (BLDCM) 
653 |a switched reluctance motor (SRM) 
653 |a active flux 
653 |a stator flux observation 
653 |a super-twisting sliding-mode stator flux observer (STSMFO) 
653 |a deep-bar effect 
653 |a mathematical model 
653 |a estimation 
653 |a motor drives 
653 |a direct torque control (DTC) 
653 |a permanent magnet synchronous motor (PMSM) 
653 |a maximum torque per ampere (MTPA) operation 
653 |a DTC with space-vector modulation (DTC-SVM) 
653 |a AFPMSM 
653 |a analytical algorithm 
653 |a vibration noise 
653 |a temperature field analysis 
653 |a SynRM 
653 |a irreversible demagnetization 
653 |a PMa-SynRM 
653 |a flux intensifying 
653 |a deadbeat current control 
653 |a PMSM servo motor drives 
653 |a auto tuning 
653 |a parameter identification 
653 |a periodic controller 
653 |a surface permanent magnet synchronous motor 
653 |a fault-tolerant system 
653 |a multi-channel 
653 |a quad-channel operation (QCO) 
653 |a triple-channel operation (TCO) 
653 |a dual-channel operation (DCO) 
653 |a single-channel operation (SCO) 
653 |a permanent magnet brushless direct current motor 
653 |a BLDCM 
653 |a double Fourier analysis 
653 |a current spectrum decomposition 
653 |a eddy current loss 
653 |a permanent magnet machine design 
653 |a cogging torque 
653 |a permanent magnet machine 
653 |a uneven magnets 
653 |a IPMSM 
653 |a uncertainty and disturbance estimator 
653 |a flux-weakening control 
653 |a double-cage induction motor 
653 |a improvement of motor reliability 
653 |a cage winding constructions 
653 |a direct start-up 
653 |a coupled electromagnetic-thermal model 
653 |a outer rotor inductor 
653 |a electric vehicle 
653 |a high-efficiency 
653 |a eco-friendly 
653 |a automation 
653 |a finite element analysis 
653 |a PMSM 
653 |a DOE 
653 |a optimization 
653 |a metamodeling 
653 |a adaptive robust control 
653 |a energy feedback 
653 |a particle swarm optimization 
653 |a torque optimal distribution method 
653 |a multiphase electric drives 
653 |a six-phase machines 
653 |a finite control set model predictive control 
653 |a predictive current control 
653 |a predictive torque control 
653 |a high frequency square-wave voltage 
653 |a interior permanent-magnet synchronous motor (IPMSM) 
653 |a magnetic polarity detection 
653 |a rotor position estimation 
653 |a characteristics analysis 
653 |a fault detection 
653 |a stator fault 
653 |a rotor fault 
653 |a torque estimation 
653 |a finite control set mode predictive control 
653 |a duty cycle 
653 |a maximum torque per ampere 
653 |a permanent magnet synchronous motor 
653 |a acoustics 
653 |a boundary element method 
653 |a electric machines 
653 |a magneto-mechanics 
653 |a modeling 
653 |a noise 
653 |a vibro-acoustics 
653 |a efficiency 
653 |a line-start synchronous reluctance motor 
653 |a permanent magnet 
653 |a power factor 
653 |a multiphase 
653 |a induction 
653 |a motor 
653 |a space harmonics 
653 |a time harmonics 
653 |a injection 
653 |a high-speed permanent synchronous motor 
653 |a magnetic field characteristic 
653 |a iron loss 
653 |a stator structure 
653 |a online parameters estimation 
653 |a permanent magnet synchronous machines 
653 |a synchronous reluctance machines 
653 |a high frequency signal injection 
653 |a CMV 
653 |a modulation techniques 
653 |a PWM 
653 |a railway traction drives 
653 |a induction motor drives 
653 |a high-speed drives 
653 |a overmodulation and six-step operation 
653 |a electrical motors 
653 |a sot filling factor 
653 |a optimization algorithm 
653 |a windings 
653 |a magnetic wire 
653 |a filling factor optimization 
653 |a electric drive 
653 |a transmission shaft 
653 |a electric transmission line 
653 |a electrical and mechanical similarities 
653 |a kinematic structure 
653 |a equivalent circuit 
653 |a mathematical modelling 
653 |a failure 
653 |a detection 
653 |a diagnosis 
653 |a BLDC 
653 |a brushless 
653 |a systematic review 
653 |a rotor position 
653 |a BLDC motor 
653 |a sensor misalignment 
653 |a sizing methodology 
653 |a electrical machines 
653 |a thermal model 
653 |a electromagnetic model 
653 |a switched reluctance motor 
653 |a torque sharing functions 
653 |a firing angle modulation 
653 |a autonomous systems 
653 |a brushless synchronous generator 
653 |a electric power generation 
653 |a high speed generator 
653 |a high resistance connection 
653 |a fault-detection 
653 |a fault-tolerant control 
653 |a six-phase permanent magnet synchronous machines 
653 |a field-oriented control 
856 4 0 |a www.oapen.org  |u https://mdpi.com/books/pdfview/book/2771  |7 0  |z Get Fullteks 
856 4 0 |a www.oapen.org  |u https://directory.doabooks.org/handle/20.500.12854/69003  |7 0  |z DOAB: description of the publication