Revisiting the dead time effects of Insight-HXMT/ME on timing analysis

Author:

Tuo Youli1ORCID,Li Xiaobo2ORCID,Tan Ying2,Wu Baiyang2,Jiang Weichun2,Song Liming2ORCID,Qu Jinlu2,Gogate Sudeep1,Zhang Shuang-Nan2,Santangelo Andrea1

Affiliation:

1. Institut für Astronomie und Astrophysik, Universität Tübingen , Sand 1, D-72076 Tübingen , Germany

2. Key Laboratory of Particle Astrophysics, Institute of High Energy Physics, Chinese Academy of Sciences , 19B Yuquan Road, Beijing 100049 , China

Abstract

ABSTRACT Dead time is a common instrumental effect of X-ray detectors, which would alter the behaviour of timing properties of astronomical signals, such as distorting the shape of power density spectra (PDS), affecting the root-mean-square of potential quasi-periodic oscillation signals, etc. We revisit the effects of the dead time of Medium Energy X-ray telescope (ME) onboard Insight-HXMT based on the simulation of electronic read-out mechanism that causes the dead time and the real data. We investigate dead time effects on the pulse profile as well as the quasi–periodic oscillation (QPO) signals. The dead time coefficient suggests a linear correlation with the observed count rate in each phase bin of the pulse profile according to the simulation of periodic signal as well as the real data observed on Swift J0243.6+6124. The Fourier-amplitude-difference (FAD) method could well recover the intrinsic shape of the observed PDS in the case that the PDS is from two identical detectors. We apply this technique on ME, by splitting the nine FPGA modules into two groups. The results indicate that the FAD technique suits the case when two groups of detectors are not largely different; and the recovered PDS of Sco X-1 observed by ME slightly enhances the significance of the previously known QPO signal, meanwhile the root-mean-square of QPO is significantly improved. We provide the FAD correction tool implemented in HXMTDAS for users in the future to better analyse QPO signals.

Funder

National Natural Science Foundation of China

Chinese Academy of Sciences

China National Space Administration

MOST

Publisher

Oxford University Press (OUP)

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