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IEEE Transactions on Antennas and Propagation
Volume 47 Number 1, January 1999
Table of Contents for this issue
Complete paper in PDF format
Development and Application of a Novel Class of Hierarchical Tangential Vector Finite Elements for Electromagnetics
Lars S. Andersen, Student Member, IEEE, and John L. Volakis, Fellow, IEEE
Page 112.
Abstract:
Tangential vector finite elements (TVFE's) overcome most
of the shortcomings of node-based finite elements for electromagnetic
simulations. For a triangular element, this paper proposes a class of
hierarchical TVFE's that differ from traditional TVFE's. The
hierarchical nature of the proposed TVFE's makes them ideally suited for
employing an efficient selective field expansion (the lowest order TVFE
employed within part of the computational domain and a higher order TVFE
employed within the remaining part of the computational domain). This is
an attractive feature not shared by nonhierarchical TVFE's for which a
more traditional approach (the same TVFE employed throughout the
computational domain) must be applied. For determining the scattering by
composite cylinders, this paper argues that the performance (in terms of
accuracy, memory, and, in most cases, CPU time) of the proposed class of
hierarchical TVFE's when applying selective field expansion is superior
to that of the lowest order TVFE and a traditional nonhierarchical TVFE.
This is the case when an artificial absorber as well as a boundary
integral is used for truncating the computational domain. A guideline is
given as to how lowest and higher order TVFE's shall be combined for
optimal performance of the proposed class of hierarchical
TVFE's.
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