Title :
Gaussian models for observed dispersion in high redshift gamma ray bursts
Author :
Weldon, Thomas P. ; Adams, Ryan S. ; Daneshvar, Kasra
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of North Carolina at Charlotte, Charlotte, NC, USA
Abstract :
Astronomical observations of gamma-ray bursts commonly exhibit dispersive behavior where high-energy gamma rays arrive significantly later than low-energy photons. Although certain quantum gravity theories suggest such dispersion, the underlying mechanisms are not yet fully understood. Nevertheless, a quadratic polynomial model has been proposed for the frequency-dependent photon velocity. Substituting this model into the Helmholtz equation then leads to a number of candidate forms of the underlying differential equations, where additional terms in the Maxwell equations model the observed dispersion. Unfortunately, this quadratic dispersion model results in unusual behavior such as superluminal velocity. Therefore, a new Gaussian dispersion model is also proposed. This Gaussian model closely approximates the quadratic model at low frequencies while avoiding the superluminal behavior of quadratic models.
Keywords :
Gaussian processes; Helmholtz equations; Maxwell equations; differential equations; gamma-ray bursts; polynomials; quantum gravity; red shift; Gaussian model; Helmholtz equation; Maxwell equations model; astronomical observation; differential equation; frequency dependent photon velocity; quadratic dispersion model; quadratic polynomial model; quantum gravity theory; red shift gamma ray burst; Delay effects; Dispersion; Equations; Gamma ray bursts; Mathematical model; Photonics; Time measurement;
Conference_Titel :
Southeastcon, 2012 Proceedings of IEEE
Conference_Location :
Orlando, FL
Print_ISBN :
978-1-4673-1374-2
DOI :
10.1109/SECon.2012.6197075