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Autores principales: Zhang, Haoyang, Yang, Shenbang, Zhang, Li, Dai, Benzhong
Formato: Preprint
Publicado: 2025
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Acceso en línea:https://arxiv.org/abs/2511.05268
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author Zhang, Haoyang
Yang, Shenbang
Zhang, Li
Dai, Benzhong
author_facet Zhang, Haoyang
Yang, Shenbang
Zhang, Li
Dai, Benzhong
contents The scaling laws reveal the underlying structural similarities shared by astrophysical systems across vastly different scales. In black hole accretion systems, the scaling relations between the characteristic damping timescales (CDTs) of light curves and black hole mass offer valuable insights into the underlying physical structure of accretion disks. Here, we investigate the long-term hard X-ray CDTs of 106 black hole and neutron star accretion systems using light curves from the \textit{Swift} Burst Alert Telescope 157-month catalog. Unexpectedly, for the first time, we discover a mass-independent CDT in these black hole accretion systems, in contrast to well-established scaling laws. This puzzling phenomenon can be attributed to conductive timescales arising from disk--corona interactions, instead of the intrinsic accretion disk processes characterized by scaling laws, and it may further modulate jet emission in blazars. This result demonstrates thermal conduction as a key mechanism driving hard X-ray variability and offers new observational evidence for the disk--corona--jet connection.
format Preprint
id arxiv_https___arxiv_org_abs_2511_05268
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A Mass-Independent Damping Timescale in Black Hole Accretion Systems
Zhang, Haoyang
Yang, Shenbang
Zhang, Li
Dai, Benzhong
High Energy Astrophysical Phenomena
The scaling laws reveal the underlying structural similarities shared by astrophysical systems across vastly different scales. In black hole accretion systems, the scaling relations between the characteristic damping timescales (CDTs) of light curves and black hole mass offer valuable insights into the underlying physical structure of accretion disks. Here, we investigate the long-term hard X-ray CDTs of 106 black hole and neutron star accretion systems using light curves from the \textit{Swift} Burst Alert Telescope 157-month catalog. Unexpectedly, for the first time, we discover a mass-independent CDT in these black hole accretion systems, in contrast to well-established scaling laws. This puzzling phenomenon can be attributed to conductive timescales arising from disk--corona interactions, instead of the intrinsic accretion disk processes characterized by scaling laws, and it may further modulate jet emission in blazars. This result demonstrates thermal conduction as a key mechanism driving hard X-ray variability and offers new observational evidence for the disk--corona--jet connection.
title A Mass-Independent Damping Timescale in Black Hole Accretion Systems
topic High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2511.05268