Title :
Computation of 3-D current driven eddy current problems using cutting surfaces
Author :
Luong, H.T. ; Marechal, Y. ; Meunier, G.
Author_Institution :
Lab. d´´Electrotech. de Grenoble, CNRS, St. Martin d´´Heres, France
fDate :
3/1/1997 12:00:00 AM
Abstract :
Since the traditional formulation in terms of a current vector potential T and a magnetic scalar potential ψ enforces zero net current in conductors, they cannot be used to solve current driven eddy current problems. For this reason, an alternative using T-T0-ψ formulation where T0 described an arbitrary current distribution with the given net current in conductors has been proposed some years ago. An alternative finite element T-Hj-φ formulation using cutting surfaces is proposed. A cutting surface describing the given net current in the conductor is introduced in the nonconducting multi-connected region in order to allow a discontinuity of the scalar potential. This method also avoids cancellation errors in permeable regions and ensures a good numerical stability of the finite element scheme. The present method is validated with a 3-D current driven eddy current problem. Results are compared to T-T0-ψ formulation computation
Keywords :
current distribution; eddy currents; finite element analysis; numerical stability; 3D current driven eddy current problems; conditioning number; conductors; current distribution; current vector potential; cutting surfaces; discontinuity; finite element formulation; finite element scheme; magnetic scalar potential; net current; nonconducting multiconnected region; numerical stability; permeable regions; Computational modeling; Conductors; Current distribution; Eddy currents; Equations; Finite element methods; Leg; Magnetic fields; Numerical stability; Potential well;
Journal_Title :
Magnetics, IEEE Transactions on