Title :
Incorporating lossy materials and PML into the split-field update FDTD method
Author :
Kesler, M.P. ; Maloney, J.G. ; Harms, P.H. ; Roden, A.
Author_Institution :
Georgia Tech. Res. Inst., Georgia Inst. of Technol., Atlanta, GA, USA
Abstract :
Periodic structures, such as frequency selective surfaces, photonic bandgap structures, and antenna arrays, are being more widely used in electromagnetic systems. To make the numerical modeling of a periodic structure more practical, usually a single unit cell of the structure is modeled and periodic boundary conditions are used to incorporate the periodic nature. Traditionally, frequency-domain techniques are used to numerically model such structures because of the simple way in which the boundary condition can be applied. However, when broadband data is needed, a time-domain approach is desirable. Unfortunately, periodic boundary conditions in the time-domain introduce the need for time-advanced data, obviously a problem for a time-domain approach. To get around this, a field transformation can be applied which simplifies the boundary conditions, but results in a more complex set of equations to be solved. The FDTD algorithm can be applied to the transformed field equations; however, additional variables must be introduced because of stability considerations. One technique that has been developed for discretizing and solving the transformed field equations is the split-field method. This paper extends the method to include general anisotropic dielectric and magnetic media.
Keywords :
absorbing media; anisotropic media; dielectric materials; electromagnetic fields; electromagnetic wave transmission; finite difference time-domain analysis; magnetic materials; periodic structures; EM wave transmission; FDTD algorithm; PML; anisotropic dielectric; antenna arrays; broadband data; electromagnetic systems; field transformation; frequency selective surfaces; frequency-domain techniques; lossy materials; lossy screen; magnetic media; numerical modeling; periodic boundary conditions; periodic structures; photonic bandgap structures; split-field update FDTD method; stability; time-advanced data; time-domain approach; transformed field equations; Antenna arrays; Boundary conditions; Equations; Finite difference methods; Frequency selective surfaces; Numerical models; Optical losses; Periodic structures; Photonic band gap; Time domain analysis;
Conference_Titel :
Antennas and Propagation Society International Symposium, 1998. IEEE
Conference_Location :
Atlanta, GA, USA
Print_ISBN :
0-7803-4478-2
DOI :
10.1109/APS.1998.699200