A Novel Method to Analyze Electromagnetic Scattering of Complex Objects
- 1 November 1982
- journal article
- Published by Institute of Electrical and Electronics Engineers (IEEE) in IEEE Transactions on Electromagnetic Compatibility
- Vol. EMC-24 (4), 397-405
- https://doi.org/10.1109/temc.1982.304054
Abstract
The finite-difference time-domain (FD-TD) method is proposed as a means of accurately computing electromagnetic scattering by arbitrary-shaped extremely complex metal or dielectric objects excited by an external plane wave. In the proposed method, one first uses the FD-TD method to compute the near total fields within a rectangular volume which fully encloses the object. Then, an electromagnetic-field equivalence principle is invoked at a virtual surface of this rectangular volume to transform the tangential near scattered fields to the far field. To verify the feasibility of this method, the surface currents, near scattered fields, far scattered fields, and radar cross section of two canonical two-dimensional objects are presented. For these cases, it is shown that the FD-TD method provides magnitude of current and field predictions which are within ± 2.5 percent and further phase values within ± 30 of values predicted by the method of moments ( MOM) at virtually every point including in shadow regions.Keywords
This publication has 15 references indexed in Scilit:
- Absorbing Boundary Conditions for the Finite-Difference Approximation of the Time-Domain Electromagnetic-Field EquationsIEEE Transactions on Electromagnetic Compatibility, 1981
- Finite-Difference Analysis of EMP Coupling to Thin Struts and WiresIEEE Transactions on Electromagnetic Compatibility, 1981
- Finite-Difference Analysis of EMP Coupling to Lossy Dielectric StructuresIEEE Transactions on Electromagnetic Compatibility, 1980
- Application of the Finite-Difference Time-Domain Method to Sinusoidal Steady-State Electromagnetic-Penetration ProblemsIEEE Transactions on Electromagnetic Compatibility, 1980
- On Implementing a Numeric Huygen's Source Scheme in a Finite Difference Program to Illuminate Scattering BodiesIEEE Transactions on Nuclear Science, 1980
- Computation of the Electromagnetic Fields and Induced Temperatures Within a Model of the Microwave-Irradiated Human EyeIEEE Transactions on Microwave Theory and Techniques, 1975
- Numerical Solution of Steady-State Electromagnetic Scattering Problems Using the Time-Dependent Maxwell's EquationsIEEE Transactions on Microwave Theory and Techniques, 1975
- Transient Currents Induced on a Metallic Body of Revolution by an Electromagnetic PulseIEEE Transactions on Electromagnetic Compatibility, 1971
- Electromagnetic pulse scattering in time-varying inhomogeneous mediaIEEE Transactions on Antennas and Propagation, 1969
- Kirchhoof's formula, its vector analogue, and other field equivalence theoremsCommunications on Pure and Applied Mathematics, 1951