Title :
Fast evaluation of Sommerfeld integrals for EM scattering and radiation by three-dimensional buried objects
Author :
Cui, Tie Jun ; Chew, Weng Cho
Author_Institution :
Dept. of Electr. & Comput. Eng., Illinois Univ., Urbana, IL, USA
fDate :
3/1/1999 12:00:00 AM
Abstract :
This paper presents a fast method for electromagnetic scattering and radiation problems pertinent to three-dimensional (3D) buried objects. In this approach, a new symmetrical form of the Green´s function is derived, which can reduce the number of Sommerfeld integrals involved in the buried objects problem. The integration along steepest descent paths and leading-order approximations are introduced to evaluate these Sommerfeld integrals, which can greatly accelerate the computation. Based on the fast evaluation of Sommerfeld integrals, the radiation of an arbitrarily oriented electric dipole buried in a half space is first analyzed and computed. Then, the scattering by buried dielectric objects and conducting objects is considered using the method of moments (MOM). Numerical results show that the fast method can save tremendous CPU time in radiation and scattering problems involving buried objects
Keywords :
Green´s function methods; backscatter; buried object detection; geophysical techniques; method of moments; radar cross-sections; radar theory; remote sensing by radar; terrain mapping; terrestrial electricity; EM scattering; Green´s function; Sommerfeld integral; backscatter; buried object detection; conducting object; dielectric object; electromagnetic scattering; fast evaluation; geoelectric method; geophysical measurement technique; ground penetrating radar; leading-order approximation; method of moments; numerical results; radar remote sensing; radar scattering; steepest descent path; symmetrical form; terrain mapping; terrestrial electricity; three-dimensional buried object; Buried object detection; Dielectrics; Electromagnetic radiation; Electromagnetic scattering; Geophysics computing; Integral equations; Message-oriented middleware; Moment methods; Radar scattering; Surface treatment;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on