研究目的
To analyze the electromagnetic scattering from penetrable conductive objects with finite conductivity using a discontinuous Galerkin time-domain (DGTD) method integrated with the impedance boundary condition (IBC).
研究成果
The DGTD method combined with SIBC and TIBC effectively analyzes electromagnetic scattering from conductive objects and graphene, avoiding volumetric discretization and reducing unknowns. The method's accuracy and applicability are demonstrated through various examples.
研究不足
The method requires approximation of surface impedance with rational functions and introduction of auxiliary variables for graphene, which may introduce complexity. The computational cost is dependent on the number of elements and the method's explicit time-marching scheme.
1:Experimental Design and Method Selection:
The DGTD method is employed for high-order accuracy and involves only local operations. The SIBC and TIBC are integrated into DGTD to avoid volumetric discretization.
2:Sample Selection and Data Sources:
The study considers two situations based on the skin depth relative to the conductive object's thickness.
3:List of Experimental Equipment and Materials:
The method is applied to conductive volumes and graphene sheets.
4:Experimental Procedures and Operational Workflow:
The surface impedance is approximated by rational functions using FRVF, and an auxiliary surface polarization current is introduced for graphene.
5:Data Analysis Methods:
The time-domain DGTD matrix equations are obtained via inverse Laplace transform, and the method is validated through numerical examples.
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