Title :
Prospective gamma-ray propagation models and comparisons to metamaterial models
Author :
Weldon, Thomas P. ; Adams, Ryan S. ; Daneshvar, Kasra ; Mulagada, Raghu K.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of North Carolina at Charlotte, Charlotte, NC, USA
Abstract :
Astronomical observations of gamma-ray bursts can exhibit dispersive behavior where high-energy gamma rays arrive significantly later than low-energy photons. Although the underlying mechanisms for the dispersion are not fully understood, a polynomial model has been proposed for modeling the apparent frequency-dependent photon velocity. The present work considers the impact of this dispersion model on the Helmholtz equation. The result is an extended form of the Helmholtz equation, where additional terms are used to model observed dispersion. The proposed set of equations closely resembles one type of metamaterial model, and therefore exhibits similar behavior. Comparisons are drawn between the gamma-ray models and similar metamaterial models that exhibit right-handed behavior at low frequencies and left-handed behavior at high frequencies. Finally, the overall approach provides a flexible modeling framework that can be adapted as new gamma-ray data become available.
Keywords :
Helmholtz equations; cosmic ray propagation; gamma-ray bursts; high-energy cosmic ray interactions; Helmholtz equation; astronomical observations; dispersion model; dispersive behavior; frequency-dependent photon velocity; gamma-ray bursts; gamma-ray data; gamma-ray models; gamma-ray propagation models; high-energy gamma rays; metamaterial models; polynomial model; Data models; Dispersion; Equations; Gamma ray bursts; Mathematical model; Metamaterials; Photonics;
Conference_Titel :
Southeastcon, 2011 Proceedings of IEEE
Conference_Location :
Nashville, TN
Print_ISBN :
978-1-61284-739-9
DOI :
10.1109/SECON.2011.5752934