On the Deceleration and Spreading of Relativistic Jets I: Jet Dynamics
arXiv:1710.07253 · doi:10.3847/1538-4357/aadb9c
Abstract
Jet breaks in gamma ray burst (GRB) afterglows provide a direct probe of their collimation angle. Modeling a jet break requires an understanding of the "jet spreading" process, whereby the jet transitions from a collimated outflow into the spherical Sedov-Taylor solution at late times. Currently, direct numerical calculations are the most accurate way to capture the deceleration and spreading process, as analytical models have previously given inaccurate descriptions of the dynamics. Here (in paper I) we present a new, semi-analytical model built empirically by performing relativistic numerical jet calculations and measuring the relationship between Lorentz factor and opening angle. We then calculate the Lorentz factor and jet opening angle as a function of shock radius and compare to the numerical solutions. Our analytic model provides an efficient means of computing synthetic GRB afterglow light curves and spectra, which is the focus of paper II.
ApJ Submitted
References in corpus (5)
Cited by in corpus (13)
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- Exploring the GRB population: Robust afterglow modelling
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- Off-axis synchrotron light curves from full-time-domain moving-mesh simulations of jets from massive stars
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- Numerical Investigation of Dynamical and Morphological Trends in Relativistic Jets
- Very High Energy Afterglow of Structured Jets: GW 170817 and Prospects for Future Detections
- Revisiting the Parameter Space of Binary Neutron Star Merger Event GW170817
- Proper Motions in the sub-kiloparsec Jet of 3C 78: Novel Constraints on the Physical Nature of Relativistic Jets