DocumentCode
845463
Title
Uniaxial and Radial Anisotropy Models for Finite-Volume Maxwellian Absorber
Author
Sankaran, Krishnaswamy ; Fumeaux, Christophe ; Vahldieck, Rüdiger
Author_Institution
Lab. for Electromagn. Fields & Microwave Electron., Swiss Fed. Inst. of Technol., Zurich
Volume
54
Issue
12
fYear
2006
Firstpage
4297
Lastpage
4304
Abstract
The uniaxial finite-volume Maxwellian absorber used as a perfectly matched layer is extended to incorporate radial anisotropy for modeling cylindrical geometries. Theoretical background and practical applications of both uniaxial and radial absorber models are presented. Both these models employ spatially and temporally co-located electromagnetic field quantities in an unstructured mesh. The uniaxial Maxwellian absorber model is tested for a truncated waveguide problem. The influence of absorber thickness and material loss parameter on the performance of the model is analyzed. Numerical reflection coefficients down to -60 dB are achieved for fine mesh discretization with approximately 20 points per wavelength confirming the convergence of numerical results. As an extension of the technique, a radially anisotropic absorber model is tested for cylindrical mesh truncation using a representative problem involving two different test scenarios. Results are compared with an existing technique commonly used in finite-volume time-domain simulations, demonstrating substantial reduction in numerical error due to cylindrical mesh truncation
Keywords
Maxwell equations; computational electromagnetics; electromagnetic wave absorption; magnetic anisotropy; time-domain analysis; computational electromagnetics; cylindrical geometry; fine mesh discretization; finite volume Maxwellian absorber; finite volume time domain; perfectly matched layer; radial absorber; radial anisotropy; truncated waveguide; uniaxial anisotropy; unstructured mesh; Anisotropic magnetoresistance; Electromagnetic fields; Electromagnetic modeling; Electromagnetic waveguides; Geometry; Perfectly matched layers; Performance analysis; Performance loss; Solid modeling; Testing; Computational electromagnetics (CEM); Maxwellian absorber; finite volume time domain (FVTD); perfectly matched layer (PML); radial absorber;
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/TMTT.2006.885577
Filename
4020485
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