Title :
Transparent boundary conditions application to the tropospheric ducting propagation simulation
Author_Institution :
Inst. of Electron., Bulgarian Acad. of Sci., Sofia, Bulgaria
Abstract :
Summary form only given. Methods based on parabolic equation (PE) approach have become the preferred propagation modeling technique for a number of electromagnetic propagation problems. In the case of tropospheric radio-wave propagation prediction and assessment these methods allow efficient and accurate numerical solutions for a complicated refractive environment (i. e. ducting) and underlying surfaces. In this report, the applicability of the nonlocal transparent boundary conditions (NTBC) and the simpler local transparent boundary conditions (LTBC) to different tropospheric ducting propagation (TDP) problems (ground-based, elevated ducts and cascades) is studied using the PE approximation in conjunction with the finite element method (FEM)
Keywords :
approximation theory; digital simulation; electromagnetic wave refraction; finite element analysis; parabolic equations; radiowave propagation; tropospheric electromagnetic wave propagation; FEM; PE approximation; cascades; electromagnetic propagation problems; elevated ducts; finite element method; ground-based propagation; local transparent boundary conditions; nonlocal transparent boundary conditions; numerical solutions; parabolic equation; propagation modeling; refractive environment; transparent boundary conditions; tropospheric ducting propagation; tropospheric ducting propagation simulation; tropospheric radio-wave propagation prediction; Antennas and propagation; Boundary conditions; Electromagnetic modeling; Electromagnetic propagation; Equations; Optical propagation; Optical waveguides; Optimized production technology; Radar antennas; Radiowave propagation;
Conference_Titel :
Applied Electromagnetism, 2000. Proceedings of the Second International Symposium of Trans Black Sea Region on
Conference_Location :
Xanthi
Print_ISBN :
0-7803-6428-7
DOI :
10.1109/AEM.2000.943171