研究目的
To develop a new fully anisotropic 3D FDTD Maxwell solver for arbitrary electrically and magnetically anisotropic media for piecewise constant electric and magnetic materials that are co-located over the primary computational cells.
研究成果
The study successfully developed and validated two FDTD methods for solving Maxwell's equations in fully anisotropic media. The nonaveraged method is first-order accurate, while the averaged method is second-order accurate for smoothly varying materials. The averaged method, despite its higher computational cost, significantly increases accuracy, making it suitable for applications requiring high precision.
研究不足
The study acknowledges that the averaged method, while more accurate, requires approximately 25% more CPU time than the nonaveraged method. Additionally, the stability and accuracy of the methods may vary with material smoothness and domain resolution.
1:Experimental Design and Method Selection:
The study developed two numerical methods, nonaveraged and averaged, for solving Maxwell's equations in arbitrary electrically and magnetically anisotropic media. The nonaveraged method is first-order accurate, while the averaged method is second-order accurate for smoothly-varying materials and reduces to first order for discontinuous material distributions.
2:Sample Selection and Data Sources:
The study used computational domains with various material distributions, including smoothly varying and discontinuous materials, to test the methods.
3:List of Experimental Equipment and Materials:
The study utilized computational grids and software for numerical simulations, but specific equipment and materials were not detailed.
4:Experimental Procedures and Operational Workflow:
The study involved long-time integration, eigenvalue analysis, and accuracy evaluation using a test case with an explicit analytic solution constructed via transformation optics.
5:Data Analysis Methods:
The study analyzed the stability and accuracy of the methods through numerical testing and comparison with analytical solutions.
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