Title :
Application of FD-MEI to electromagnetic scattering from transversally anisotropic inhomogeneous cylinders
Author :
Chen, Zhi Ning ; Hong, Wei ; Zhang, Wen Xun
Author_Institution :
Inst. of Inf. Sci. & Electron., Tsukuba Univ., Ibaraki, Japan
fDate :
5/1/1998 12:00:00 AM
Abstract :
The numerical solution of the finite difference with the measured equation of invariance (FD-MEI) for transversally anisotropic cylinders is presented. It is different from the currently available methods for the anisotropic scatterers; this approach involves both the finite-difference equations at interior nodes of the mesh and the measured equation of invariance for the boundary nodes of the mesh. It has the merit of saving the computing time and computer memory needs. By introducing the novel nine-point mesh the generalized finite-difference equations for the inhomogeneous transversally anisotropic material are derived. The radar cross section (RCS) for inhomogeneous, lossy, electrically large, and arbitrarily shaped two-dimensional transversally anisotropic objects are calculated. The computing efficiency and accuracy are assessed using comparisons with two other methods, namely, the integral equation based on a plane wave representation of the fields and the combined field surface integral equations when available
Keywords :
electromagnetic wave scattering; finite difference methods; radar cross-sections; FD-MEI; RCS; anisotropic scatterers; boundary nodes; combined field surface integral equations; computer memory; computing accuracy; computing efficiency; computing time; electrically large 2D object; electromagnetic scattering; finite difference; finite-difference equations; generalized finite-difference equations; integral equation; interior nodes; lossy object; measured equation of invariance; nine-point mesh; numerical solution; plane wave representation; radar cross section; transversally anisotropic inhomogeneous cylinders; Anisotropic magnetoresistance; Current measurement; Difference equations; Differential equations; Electromagnetic measurements; Electromagnetic scattering; Finite difference methods; Integral equations; Nonuniform electric fields; Radar scattering;
Journal_Title :
Electromagnetic Compatibility, IEEE Transactions on