Effect of mass-loss due to stellar winds on the formation of supermassive black hole seeds in dense nuclear star clusters
Monthly Notices of the Royal Astronomical Society Oxford University Press 505:2 (2021) 2186-2194
Abstract:
The observations of high-redshifts quasars at z 鈮 6 have revealed that supermassive black holes (SMBHs) of mass 鈭109M鈯欌埣109M鈯 were already in place within the first 鈭糋yr after the big bang. Supermassive stars (SMSs) with masses 103鈭5M鈯103鈭5M鈯 are potential seeds for these observed SMBHs. A possible formation channel of these SMSs is the interplay of gas accretion and runaway stellar collisions inside dense nuclear star clusters (NSCs). However, mass-loss due to stellar winds could be an important limitation for the formation of the SMSs and affect the final mass. In this paper, we study the effect of mass-loss driven by stellar winds on the formation and evolution of SMSs in dense NSCs using idealized N-body simulations. Considering different accretion scenarios, we have studied the effect of the mass-loss rates over a wide range of metallicities Z* = [.001鈥1]Z鈯 and Eddington factors fEdd=L鈭/LEdd=0.5,0.7,and0.9fEdd=L鈭/LEdd=0.5,0.7,and0.9鈦. For a high accretion rate of 10鈭4M鈯檡r鈭110鈭4M鈯檡r鈭1鈦, SMSs with masses 鈮103M鈯檡r鈭1鈮103M鈯檡r鈭1 could be formed even in a high metallicity environment. For a lower accretion rate of 10鈭5M鈯檡r鈭110鈭5M鈯檡r鈭1鈦, SMSs of masses 鈭103鈭4M鈯欌埣103鈭4M鈯 can be formed for all adopted values of Z* and fEdd, except for Z* = Z鈯 and fEdd = 0.7 or 0.9. For Eddington accretion, SMSs of masses 鈭103M鈯欌埣103M鈯 can be formed in low metallicity environments with Z* 鈮 0.01鈥塟鈯. The most massive SMSs of masses 鈭105M鈯欌埣105M鈯 can be formed for Bondi鈥揌oyle accretion in environments with Z* 鈮 0.5鈥塟鈯. An intermediate regime is likely to exist where the mass-loss from the winds might no longer be relevant, while the kinetic energy deposition from the wind could still inhibit the formation of a very massive object.Strong suppression of heat conduction in a laboratory replica of galaxy-cluster turbulent plasmas
(2021)
An upper observable black hole mass scale for tidal destruction events with thermal X-ray spectra
Monthly Notices of the Royal Astronomical Society Oxford University Press 505:2 (2021) 1629-1644
Abstract:
We comprehensively model the X-ray luminosity emergent from time-dependent relativistic accretion discs, developing analytical models of the X-ray luminosity of thermal disc systems as a function of black hole mass M, disc mass Md, and disc 伪-parameter. The X-ray properties of these solutions will be directly relevant for understanding tidal disruption event (TDE) observations. We demonstrate an extremely strong suppression of thermal X-ray luminosity from large mass black holes, LX 鈭 exp鈥(鈭 m7/6), where m is a dimensionless mass, roughly the black hole mass in unity of 106M鈯. This strong suppression results in upper observable black hole mass limits, which we demonstrate to be of order Mlim 鈮 3 脳 107M鈯, above which thermal X-ray emission will not be observable. This upper observable black hole mass limit is a function of the remaining disc parameters, and the full dependence can be described analytically (equation 82). We demonstrate that the current population of observed X-ray TDEs is indeed consistent with an upper black hole mass limit of order M 鈭 107M鈯, consistent with our analysis.The Equivalence Principle and The Cosmological Constant Problem
ArXiv 2105.0775 (2021)
Feasibility study for a high-k temperature fluctuation diagnostic based on soft x-ray imaging
Review of Scientific Instruments American Institute of Physics 92:5 (2021) 053537