Title :
Finite-difference time-domain simulation of ground penetrating radar on dispersive, inhomogeneous, and conductive soils
Author :
Teixeira, F.L. ; Chew, Weng Cho ; Straka, M. ; Oristaglio, M.L. ; Wang, T.
Author_Institution :
Center for Comput. Electromagn., Illinois Univ., Urbana, IL, USA
fDate :
11/1/1998 12:00:00 AM
Abstract :
A three-dimensional (3D) time-domain numerical scheme for simulation of ground penetrating radar (GPR) on dispersive and inhomogeneous soils with conductive loss is described. The finite-difference time-domain (FDTD) method is used to discretize the partial differential equations for time stepping of the electromagnetic fields. The soil dispersion is modeled by multiterm Lorentz and/or Debye models and incorporated into the FDTD scheme by using the piecewise-linear recursive convolution (PLRC) technique. The dispersive soil parameters are obtained by fitting the model to reported experimental data. The perfectly matched layer (PML) is extended to match dispersive media and used as an absorbing boundary condition to simulate an open space. Examples are given to verify the numerical solution and demonstrate its applications. The 3D PML-PLRC-FDTD formulation facilitates the parallelization of the code. A version of the code is written for a 32-processor system, and an almost linear speedup is observed
Keywords :
backscatter; buried object detection; finite difference time-domain analysis; geophysical techniques; radar cross-sections; radar detection; radar theory; remote sensing by radar; soil; terrain mapping; terrestrial electricity; Debye model; backscatter; buried object detection; conductive soil; dispersive soil; electromagnetic fields; finite-difference time-domain method; finite-difference time-domain simulation; geoelectric method; geophysical measurement technique; ground penetrating radar; inhomogeneous soil; land surface; multiterm Lorentz model; numerical model; partial differential equations; piecewise-linear recursive convolution; radar remote sensing; radar scattering; terrain mapping; terrestrial electricity; three-dimensional model; time stepping; Convolution; Dispersion; Electromagnetic fields; Finite difference methods; Ground penetrating radar; Numerical simulation; Partial differential equations; Piecewise linear techniques; Soil; Time domain analysis;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on