Title :
Trefftz-Discontinuous Galerkin and Finite Element Multi-Solver Technique for Modeling Time-Harmonic EM Problems With High-Conductivity Regions
Author_Institution :
Tensor Res., Andover, MA, USA
Abstract :
This paper introduces a multi-solver technique to enhance the broadband performance of time-harmonic finite element solvers when solving electromagnetic problems with high-conductivity regions. The high-conductivity regions are modeled by the Trefftz-discontinuous Galerkin (TDG) formulation, whereas a tangential vector finite element (TVFE) formulation is used in the rest of the computational domain. The novel multi-solver technique couples the TVFE and TDG models by making use of Robin-type transmission conditions. The efficiency is shown by computing the broadband frequency sweep of the inductance of a two-wire transmission line; the necessary number of DoFs in the multi-solver case decreases significantly compared with the pure TVFE solution. The results of this problem also verify the new formulation and its implementation because the problem has an analytical solution.
Keywords :
Galerkin method; Maxwell equations; electromagnetic field theory; finite element analysis; transmission line theory; DoFs; Maxwell problem; Robin-type transmission conditions; TDG models; TVFE model; Trefftz-discontinuous Galerkin technique; broadband frequency sweep; broadband performance; electromagnetic problems; finite element multisolver technique; high-conductivity regions; multisolver technique; tangential vector finite element formulation; time-harmonic EM problem modelling; time-harmonic finite element solvers; two-wire transmission line; Broadband communication; Computational modeling; Couplings; Finite element analysis; Mathematical model; Method of moments; Vectors; Finite element method; Maxwell problem; Trefftz-discontinuous Galerkin (TDG) method; multi-solver technique;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2013.2284383