Control and Nonlinear Dynamics on Energy Conversion Systems |
Autore | Iu Herbert Ho-Ching |
Pubbl/distr/stampa | MDPI - Multidisciplinary Digital Publishing Institute, 2019 |
Descrizione fisica | 1 electronic resource (438 p.) |
Soggetto non controllato |
multi-clearance
neural network zero average dynamics Cable3D variable bus voltage MG explosion-magnetic generator quadratic boost matrix norm coordinated control system permanent magnet synchronous motor (PMSM) photovoltaic (PV) power conversion capacitance current pulse train control air gap eccentricity high step-up voltage gain voltage ripple offset-free goal representation heuristic dynamic programming (GrHDP) current mode control sliding mode observer (SMO) multi-model predictive control combined heat and power unit discontinuous conduction mode (DCM) current-pulse formation sliding mode control single artificial neuron goal representation heuristic dynamic programming (SAN-GrHDP) subharmonic oscillations DC micro grid supply air temperature air-handling unit (AHU) vibration characteristics magnetic saturation slope compensation fixed-point inducting control the load of suspension point in the z direction variable switching frequency DC-DC converters droop control Helmholtz number plasma accelerator contraction analysis sliding control bifurcations in control parameter disturbance observer DC motor multiphysics virtual impedance pulverizing system ultrahigh voltage conversion ratio corrugated pipe DC-DC converters maximum power point tracking (MPPT) dynamic model nonlinear dynamics new step-up converter micro-grid global stability extended back electromotive force (EEMF) small-signal model electromagnetic vibration nonlinear dynamic model excited modes data-driven rigid body rotation position sensorless prediction centralized vs. decentralized control inferential control boost-flyback converter calculation method switched reluctance generator monodromy matrix bridgeless converter decoupling control distributed architecture wave buck converter soft sensor model–plant mismatches whistling noise efficiency optimization steel catenary riser moving horizon estimation single artificial neuron (SAN) space mechanism two-stage bypass electrical machine harmonic suppression local vs. global optimization performance recovery reinforcement learning (RL) adaptive dynamic programming (ADP) overvoltage planetary gears maximum power point tracking DC-DC buck converter power quality average-current mode control feedback coefficient power factor correction (PFC) capacitance current predictive control rotor dynamics |
ISBN | 3-03921-111-0 |
Formato | Materiale a stampa ![]() |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Record Nr. | UNINA-9910346671703321 |
Iu Herbert Ho-Ching
![]() |
||
MDPI - Multidisciplinary Digital Publishing Institute, 2019 | ||
![]() | ||
Lo trovi qui: Univ. Federico II | ||
|
Design and Application of Electrical Machines |
Autore | Palka Ryszard |
Pubbl/distr/stampa | MDPI - Multidisciplinary Digital Publishing Institute, 2022 |
Descrizione fisica | 1 electronic resource (352 p.) |
Soggetto topico |
Technology: general issues
History of engineering & technology |
Soggetto non controllato |
electric AWD tractor
SOC level simulation model load measurement system driving test brushless direct current motor with permanent magnet (BLDCM) winding configurations star delta star-delta fault states open circuit (OC) FFT neutral-point voltage electrical machine hydro generator faulty synchronization finite element method field-circuit modeling permanent magnet machines hybrid excitation electric vehicles wind power generator finite element methods variable speed machines synchronous generator permanent magnets demagnetization motor control switched reluctance motor MATLAB simulation wheel hub motor electric drive permanent magnet synchronous motor electrical machines thermal modeling preformed coils insulation systems pre-shaped conductor system model structural dynamics multibody simulation transient electrical machine model permanent magnet synchronous machine induction machine dynamic gear forces planetary gear synchronous condenser different materials magnetic flux leakage in the end eddy current loss fluid-solid coupling finite element analysis (FEA) interior PM synchronous motor surface PM synchronous motor traction applications finite element analysis flux switching machine flux bridge magnetic flux leakage variable flux machine axial flux generator spatial harmonic interaction harmonic balance method turbo-generator eddy current losses data driven support vector regression multi-layer perceptron vane pump electric motor integrated motor-pump assembly (IMPA) balanced vane pump fluid power drives brushless DC electric motor permanent magnet machine measurements high-speed motor electromagnetic analysis mechanical analysis thermal analysis electromechanical convertor drive system component electromagnetic calculation MR fluids MR multi-disc clutch clutch design electric train hybrid excited linear flux switching machine rope-less elevator |
Formato | Materiale a stampa ![]() |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Record Nr. | UNINA-9910576876803321 |
Palka Ryszard
![]() |
||
MDPI - Multidisciplinary Digital Publishing Institute, 2022 | ||
![]() | ||
Lo trovi qui: Univ. Federico II | ||
|
Ein neues Konzept für die geberlose Regelung von Permanentmagnet-Synchronmaschinen für Hybrid- und Elektrofahrzeuge |
Autore | Paulus Sebastian |
Pubbl/distr/stampa | KIT Scientific Publishing, 2019 |
Descrizione fisica | 1 electronic resource (VII, 160 p. p.) |
Soggetto non controllato |
Hybridfahrzeug
electrical machine geberlose Regelung sensorless control elektrische Maschine control theory electrical vehicle Elektrofahrzeug permanent magnet synchronous machine Regelungstechnik Permanentmagnet Synchronmaschine |
ISBN | 1000087356 |
Formato | Materiale a stampa ![]() |
Livello bibliografico | Monografia |
Lingua di pubblicazione | ger |
Record Nr. | UNINA-9910346949203321 |
Paulus Sebastian
![]() |
||
KIT Scientific Publishing, 2019 | ||
![]() | ||
Lo trovi qui: Univ. Federico II | ||
|