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An isogeometric boundary element method for electromagnetic scattering with compatible B-spline discretizations

Academic Article
Publication Date:
2018
abstract:
We outline the construction of compatible B-splines on 3D surfaces that satisfy the continuity requirements for electromagnetic scattering analysis with the boundary element method (method of moments). Our approach makes use of Non-Uniform Rational B-splines to represent model geometry and compatible B-splines to approximate the surface current, and adopts the isogeometric concept in which the basis for analysis is taken directly from CAD (geometry) data. The approach allows for high-order approximations and crucially provides a direct link with CAD data structures that allows for efficient design workflows. After outlining the construction of div- and curl-conforming B-splines defined over 3D surfaces we describe their use with the electric and magnetic field integral equations using a Galerkin formulation. We use Bézier extraction to accelerate the computation of NURBS and B-spline terms and employ H-matrices to provide accelerated computations and memory reduction for the dense matrices that result from the boundary integral discretization. The method is verified using the well known Mie scattering problem posed over a perfectly electrically conducting sphere and the classic NASA almond problem. Finally, we demonstrate the ability of the approach to handle models with complex geometry directly from CAD without mesh generation.
Iris type:
01.01 Articolo in rivista
Keywords:
Boundary element method; Compatible B-splines; Electromagnetic scattering; Isogeometric analysis; Method of moments
List of contributors:
VAZQUEZ HERNANDEZ, Rafael
Authors of the University:
VAZQUEZ HERNANDEZ RAFAEL
Handle:
https://iris.cnr.it/handle/20.500.14243/369726
Published in:
JOURNAL OF COMPUTATIONAL PHYSICS
Journal
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https://www.sciencedirect.com/science/article/pii/S0021999118300354?via%3Dihub
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