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arXiv:2410.14119·v1·High Energy Astrophysical Phenomena

A Comprehensive Analysis of Insight-HXMT Gamma-Ray Burst Data. I. Power Density Spectrum

Zi-Min Zhou · Xiang-Gao Wang · En-Wei Liang · Jia-Xin Cao · Hui-Ya Liu · Cheng-Kui Li · Bing Li · Da-Bin Lin · Tian-Ci Zheng · Rui-Jing Lu

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Abstract

Power Density Spectrum (PDS) is one of the powerful tools to study light curves of gamma-ray bursts (GRBs). We show the average PDS and individual PDS analysis with {\it Hard X-ray Modulation Telescope} (also named \insighthxmt) GRBs data. The values of power-law index of average PDS () for long GRBs (LGRBs) vary from 1.58-1.29 (for 100-245, 245-600, and 600-2000 keV). The \insighthxmt\ data allow us to extend the energy of the LGRBs up to 2000 keV, and a relation between and energy , (8-2000 keV) is obtained. We first systematically investigate the average PDS and individual PDS for short GRBs (SGRBs), and obtain (8-1000 keV), where the values of vary from 1.86 to 1.34. The distribution of power-law index of individual PDS () of SGRB, is consistent with that of LGRB, and the value for the dominant timescale group (the bent power-law, BPL) is higher than that for the no-dominant timescale group (the single power-law, PL). Both LGRBs and SGRBs show similar and , which indicates that they may be the result of similar stochastic processes. The typical value of dominant timescale for LGRBs and SGRBs is 1.58 s and 0.02 s, respectively. It seems that the in proportion to the duration of GRBs , with a relation . The GRB light curve may result from superposing a number of pulses with different timescales. No periodic and quasi-periodical signal above the 3 significance threshold is found in our sample.

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