The split - step - fourier and finite - element - based parabolic - equation propagation - prediction tools: canonical tests, systematic comparisons and calibration

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IEEE

Erişim Hakkı

info:eu-repo/semantics/closedAccess

Özet

Powerful propagation-prediction tools, based on the split-step Fourier-transform and the Finite-Element-Method (FEM) solutions of the parabolic equation (PE) are discussed. The parabolic equation represents one-way propagation, and is widely used in two-dimensional (2D) groundwave propagation modeling. It takes the Earth's curvature, the atmospheric refractivity variations, non-flat terrain scattering, and the boundary losses into account. MATLAB-based numerical split-step parabolic-equation and Finite-Element-Method parabolic-equation routines were developed. These were used in canonical tests and comparisons to illustrate that the parabolic equation accounts for all of these effects. Both tools were calibrated against an analytical exact solution.

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Anahtar Kelimeler

Electromagnetic Propagation, Electromagnetic Refraction, Terrestrial Atmosphere, Analytical Solution, Atmospheric Refractivity, Dirichlet Boundary Condition, Ducting, Discrete Fourier Transforms, Finite Element Methods, Fourier Transform, Ground Wave Propagation, Waveguides, Guided Waves, MATLAB, Numerical Analysis, Parabolic Equation, Radio Waves, Split - Step Parabolic Equation, Wave Equation Waveguides, Electromagnetic - Wave Propagation, Guıding Environments, Guiding Environments, Transverse Varıaiıon, Intrınsic Modes, Troposphere, Algorithm

Kaynak

IEEE Antennas and Propagation Magazine

WoS Q Değeri

Scopus Q Değeri

Cilt

52

Sayı

3

Künye

APAYDIN, G., SEVGİ, L. (2010). The split - step - fourier and finite - element - based parabolic - equation propagation - prediction tools: canonical tests, systematic comparisons and calibration. IEEE Antennas and Propagation Magazine, 52 (3), pp. 66-79. https://dx.doi.org/10.1109/MAP.2010.5586576.

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