Title :
High Frequency Transformer Model based on duality principle and finite element method analysis
Author :
Khelil, Makram ; Elleuch, Mohamed
Author_Institution :
L.S.E., Univ. de Tunis El Manar, Tunis, Tunisia
Abstract :
This paper deals with a new High Frequency Transformer Model HFTM, taking into account magnetic core and fractionated winding. For electromagnetic transient phenomena, capacitive effects are considered by a series of capacitors among different transformer elements. This model has been tested using excitation by ramp or surge overvoltage applied to the windings terminal. Leakage impedances, magnetizing branches, zero-sequences (homopolar) fluxes and losses in windings have been developed using duality principle. In this model, electrical parameters are depending on frequency due to skin and proximity effects. Parallel Foster circuits have been fitted to represent in the time domain the damping produced by eddy currents in the windings and the iron core. The lumped parameters of these equivalents circuits have been established from inductive and resistive parameters deduced from Finite Element Method (FEM) simulation results of magnetic field distribution in winding and magnetic core for multiples frequencies up to 1MHz. The analytics HF formulas for one lamination or turn have been exploited. The Foster network elements chosen with five terms should be connected in parallel with the nonlinear magnetizing branch representing iron saturation in rated frequency. The obtained results show a satisfactory agreement with FEM analysis results. Complete model of 10kVA three-phase three-legged transformer has been achieved based on duality principle and taking into account winding resistance and core frequency dependence as well as capacitive effects. The model has been tested to simulate voltage propagation in windings and neutral current response subject to surge overvoltage.
Keywords :
duality (mathematics); eddy currents; finite element analysis; high-frequency transformers; magnetic cores; magnetic fields; power transformers; skin effect; FEM analysis; HF formulas; HFTM; apparent power 10 kVA; capacitive effects; core frequency dependence; duality principle; eddy currents; electrical parameters; electromagnetic transient phenomena; excitation; finite element method analysis; fractionated winding; high frequency transformer model; homopolar fluxes; inductive parameters; iron core; iron saturation; leakage impedances; lumped parameters; magnetic core; magnetic field distribution; neutral current response; nonlinear magnetizing branch; parallel foster circuits; proximity effects; ramp; resistive parameters; skin effects; surge overvoltage; three-phase three-legged transformer; time domain; transformer elements; voltage propagation; winding resistance; windings terminal; zero-sequences fluxes; Conductors; Eddy currents; Finite element analysis; Integrated circuit modeling; Magnetic circuits; Magnetic cores; Windings; Capacitive effects; Duality principle; Finite Element Method; High Frequency; Skin and proximity effects; Three-phase transformer; Transient analysis;
Conference_Titel :
Systems, Signals & Devices (SSD), 2013 10th International Multi-Conference on
Conference_Location :
Hammamet
Print_ISBN :
978-1-4673-6459-1
Electronic_ISBN :
978-1-4673-6458-4
DOI :
10.1109/SSD.2013.6564087