Title :
Coupled vector-scalar potential method for 3D magnetostatic field computations using hexahedral finite elements
Author_Institution :
Qatar Univ., Doha, Qatar
fDate :
9/1/1996 12:00:00 AM
Abstract :
This paper introduces a three dimensional finite element (3D-FE) method based on a coupled vector-scalar potential formulation. The method is most suited for large-scale magnetostatic field applications containing mixed media (conductors-iron), due to substantial savings in computational storage and CPU time. The method allows one to calculate the magnetic field intensity in the current-carrying regions using a reduced curl-curl formulation based on a second order hexahedral type FE. The resulting reduced field intensity is used to develop forcing functions for a global magnetic scalar potential solution over the entire volume of the problem based on a first order hexahedral type FE. The analysis developed is applied to an illustrative shell-type transformer for verification purposes of the numerical results
Keywords :
finite element analysis; magnetic fields; magnetostatics; 3D finite element method; 3D magnetostatic field computations; coupled vector-scalar potential method; current-carrying regions; forcing functions; hexahedral finite elements; large-scale magnetostatic field applications; magnetic field intensity; mixed media; reduced curl-curl formulation; shell-type transformer; three dimensional FEM; Alternators; Couplings; DC machines; Finite element methods; Grid computing; Iron; Large-scale systems; Magnetic analysis; Magnetic fields; Magnetostatics;
Journal_Title :
Magnetics, IEEE Transactions on