The high-energy probability distribution of accretion disc luminosity fluctuations

<p>The probability density function of accretion disc luminosity fluctuations at high observed energies (i.e. energies larger than the peak temperature scale of the disc) is derived, under the assumption that the temperature fluctuations are lognormally distributed. Thin disc theory is used th...

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Main Authors: Mummery, A, Balbus, S
Format: Journal article
Language:English
Published: Oxford University Press 2022
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author Mummery, A
Balbus, S
author_facet Mummery, A
Balbus, S
author_sort Mummery, A
collection OXFORD
description <p>The probability density function of accretion disc luminosity fluctuations at high observed energies (i.e. energies larger than the peak temperature scale of the disc) is derived, under the assumption that the temperature fluctuations are lognormally distributed. Thin disc theory is used throughout. While lognormal temperature fluctuations would imply that the disc’s bolometric luminosity is also lognormal, the observed Wien-like luminosity behaves very differently. For example, in contrast to a lognormal distribution, the standard deviation of the derived distribution is not linearly proportional to its mean. This means that these systems do not follow a linear rms-flux relationship. Instead they exhibit very high intrinsic variance, and undergo what amounts to a phase transition, in which the mode of the distribution (in the statistical sense) ceases to exist, even for physically reasonable values of the underlying temperature variance. The moments of this distribution are derived using asymptotic expansion techniques. A result that is important for interpreting observations is that the theory predicts that the fractional variability of these disc systems should increase as the observed frequency is increased. The derived distribution will be of practical utility in quantitatively understanding the variability of disc systems observed at energies above their peak temperature scale, including X-ray observations of tidal disruption events.</p>
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spelling oxford-uuid:a9fc9bc0-38cf-496b-aa36-a8ce93bfe1a32023-04-13T14:03:59ZThe high-energy probability distribution of accretion disc luminosity fluctuationsJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:a9fc9bc0-38cf-496b-aa36-a8ce93bfe1a3EnglishSymplectic ElementsOxford University Press2022Mummery, ABalbus, S<p>The probability density function of accretion disc luminosity fluctuations at high observed energies (i.e. energies larger than the peak temperature scale of the disc) is derived, under the assumption that the temperature fluctuations are lognormally distributed. Thin disc theory is used throughout. While lognormal temperature fluctuations would imply that the disc’s bolometric luminosity is also lognormal, the observed Wien-like luminosity behaves very differently. For example, in contrast to a lognormal distribution, the standard deviation of the derived distribution is not linearly proportional to its mean. This means that these systems do not follow a linear rms-flux relationship. Instead they exhibit very high intrinsic variance, and undergo what amounts to a phase transition, in which the mode of the distribution (in the statistical sense) ceases to exist, even for physically reasonable values of the underlying temperature variance. The moments of this distribution are derived using asymptotic expansion techniques. A result that is important for interpreting observations is that the theory predicts that the fractional variability of these disc systems should increase as the observed frequency is increased. The derived distribution will be of practical utility in quantitatively understanding the variability of disc systems observed at energies above their peak temperature scale, including X-ray observations of tidal disruption events.</p>
spellingShingle Mummery, A
Balbus, S
The high-energy probability distribution of accretion disc luminosity fluctuations
title The high-energy probability distribution of accretion disc luminosity fluctuations
title_full The high-energy probability distribution of accretion disc luminosity fluctuations
title_fullStr The high-energy probability distribution of accretion disc luminosity fluctuations
title_full_unstemmed The high-energy probability distribution of accretion disc luminosity fluctuations
title_short The high-energy probability distribution of accretion disc luminosity fluctuations
title_sort high energy probability distribution of accretion disc luminosity fluctuations
work_keys_str_mv AT mummerya thehighenergyprobabilitydistributionofaccretiondiscluminosityfluctuations
AT balbuss thehighenergyprobabilitydistributionofaccretiondiscluminosityfluctuations
AT mummerya highenergyprobabilitydistributionofaccretiondiscluminosityfluctuations
AT balbuss highenergyprobabilitydistributionofaccretiondiscluminosityfluctuations