Scale invariance in X-ray flares of gamma-ray bursts
arXiv:2212.08813 · doi:10.1103/PhysRevResearch.5.013019
Abstract
X-ray flares are generally believed to be produced by the reactivation of the central engine, and may have the same energy dissipation mechanism as the prompt emission of gamma-ray bursts (GRBs). X-ray flares can therefore provide important clues to understanding the nature of the central engines of GRBs. In this work, we study for the first time the physical connection between differential size and return distributions of X-ray flares of GRBs with known redshifts. We find that the differential distributions of duration, energy, and waiting time can be well fitted by a power-law function. In particular, the distributions for the differences of durations, energies, and waiting times at different times (i.e., the return distributions) well follow a -Gaussian form. The values in the -Gaussian distributions remain nearly steady for different temporal interval scales, implying a scale-invariant structure of GRB X-ray flares. Moreover, we verify that the parameters are related to the power-law indices of the differential size distributions, characterized as . These statistical features can be well explained within the physical framework of a self-organizing criticality system.
6 pages, 3 figures, 2 tables. Published in Phys. Rev. Research
References in corpus (9)
- X-Ray Flares from Postmerger Millisecond Pulsars
- A bimodal burst energy distribution of a repeating fast radio burst source
- The First Survey of X-ray Flares from Gamma Ray Bursts Observed by Swift: Temporal Properties and Morphology
- 25 Years of Self-Organized Criticality: Solar and Astrophysics
- The First Survey of X-ray Flares from Gamma Ray Bursts Observed by Swift: Spectral Properties and Energetics
- Analysis of Self-Organized Criticality in the Olami-Feder-Christensen model and in real earthquakes
- The X-ray afterglow of the short gamma ray burst 050724
- Analysis of return distributions in the coherent noise model
- Scale-invariance in the repeating fast radio burst 121102