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Revealing physical properties of a tidal disruption event iPTF16fnl
Phys. Rev. D 111, 043041 – Published 19 February, 2025
DOI: https://doi.org/10.1103/PhysRevD.111.043041
Abstract
Tidal disruption event iPTF16fnl shows a relatively low optical flare with observationally very weak x-ray emission and the spectroscopic property that the helium emission line from the source dominates over the hydrogen emission line at early times. We explore these observed signatures by calculating spectral emission lines with the publicly available code cloudy. We estimate five physical parameters by fitting the observed optical UV spectra on multiple days to a theoretical model of a steady-state, slim disk with a spherical outflow. The resultant key parameters among them are black hole mass , stellar mass , and wind velocity . The disk-wind model also estimates the radiative efficiency to be over the observational time, resulting in the disk being radiatively inefficient. In our cloudy model, the filling factor of the wind is also estimated to be 0.8, suggesting that the wind is moderately clumpy. We reveal that the helium-to-hydrogen number density ratio of the wind lies between 0.1 and 0.15, which is nearly the same as the solar case, suggesting the tidally disrupted star is originally a main sequence star. Because the optical depth of the helium line is lower than the hydrogen line by 2 orders of magnitude, the helium line is significantly optically thinner than the hydrogen line. Consequently, our results indicate that the helium line luminosity dominates the hydrogen line luminosity due to the optical depth effect despite a small helium-to-hydrogen number density ratio value.
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References (69)
- J. Frank and M. J. Rees, Effects of massive black holes on dense stellar systems, Mon. Not. R. Astron. Soc. 176, 633 (1976).
- M. J. Rees, Tidal disruption of stars by black holes of solar masses in nearby galaxies, Nature (London) 333, 523 (1988).
- J. Guillochon and E. Ramirez-Ruiz, Hydrodynamical simulations to determine the feeding rate of black holes by the tidal disruption of stars: The importance of the impact parameter and stellar structure, Astrophys. J. 767, 25 (2013).
- G. Lodato, A. R. King, and J. E. Pringle, Stellar disruption by a supermassive black hole: Is the light curve really proportional to ?, Mon. Not. R. Astron. Soc. 392, 332 (2009).
- T. Mageshwaran and A. Mangalam, Stellar and gas dynamical model for tidal disruption events in a quiescent galaxy, Astrophys. J. 814, 141 (2015).
- E. C. A. Golightly, E. R. Coughlin, and C. J. Nixon, Tidal disruption events: The role of stellar spin, Astrophys. J. 872, 163 (2019).
- K. Hayasaki, S. Zhong, S. Li, P. Berczik, and R. Spurzem, Classification of tidal disruption events based on stellar orbital properties, Astrophys. J. 855, 129 (2018).
- G. Park and K. Hayasaki, Tidal disruption flares from stars on marginally bound and unbound orbits, Astrophys. J. 900, 3 (2020).
- S. Zhong, K. Hayasaki, S. Li, P. Berczik, and R. Spurzem, Exploring the origin of stars on bound and unbound orbits causing tidal disruption events, Astrophys. J. 959, 19 (2023).
- M. Cufari, E. R. Coughlin, and C. J. Nixon, The eccentric nature of eccentric tidal disruption events, Astrophys. J. 924, 34 (2022).
- K. Hayasaki, N. Stone, and A. Loeb, Finite, intense accretion bursts from tidal disruption of stars on bound orbits, Mon. Not. R. Astron. Soc. 434, 909 (2013).
- K. Hayasaki, N. Stone, and A. Loeb, Circularization of tidally disrupted stars around spinning supermassive black holes, Mon. Not. R. Astron. Soc. 461, 3760 (2016).
- C. Bonnerot, E. M. Rossi, G. Lodato, and D. J. Price, Disc formation from tidal disruptions of stars on eccentric orbits by Schwarzschild black holes, Mon. Not. R. Astron. Soc. 455, 2253 (2016).
- C. Bonnerot and W. Lu, Simulating disc formation in tidal disruption events, Mon. Not. R. Astron. Soc. 495, 1374 (2020).
- W. Lu and C. Bonnerot, Self-intersection of the fallback stream in tidal disruption events, Mon. Not. R. Astron. Soc. 492, 686 (2020).
- T. W. S. Holoien et al., Six months of multiwavelength follow-up of the tidal disruption candidate ASASSN-14li and implied TDE rates from ASAS-SN, Mon. Not. R. Astron. Soc. 455, 2918 (2016).
- R. D. Saxton, A. M. Read, S. Komossa, P. Rodriguez-Pascual, G. Miniutti, P. Dobbie, P. Esquej, M. Colless, and K. W. Bannister, An X-ray and UV flare from the galaxy XMMSL1 J061927.1-655311, Astron. Astrophys. 572, A1 (2014).
- W. P. Maksym, M. P. Ulmer, M. C. Eracleous, L. Guennou, and L. C. Ho, A tidal flare candidate in Abell 1795, Mon. Not. R. Astron. Soc. 435, 1904 (2013).
- P. Esquej, R. D. Saxton, M. J. Freyberg, A. M. Read, B. Altieri, M. Sanchez-Portal, and G. Hasinger, Candidate tidal disruption events from the XMM-Newton slew survey, Astron. Astrophys. 462, L49 (2007).
- L. Dai, J. C. McKinney, N. Roth, E. Ramirez-Ruiz, and M. C. Miller, A unified model for tidal disruption events, Astrophys. J. Lett. 859, L20 (2018).
- L. E. Strubbe and E. Quataert, Optical flares from the tidal disruption of stars by massive black holes, Mon. Not. R. Astron. Soc. 400, 2070 (2009).
- A. L. Piro and W. Lu, Wind-reprocessed transients, Astrophys. J. 894, 2 (2020).
- N. Roth, E. M. Rossi, J. Krolik, T. Piran, B. Mockler, and D. Kasen, Radiative emission mechanisms, Space Sci. Rev. 216, 114 (2020).
- K. Uno and K. Maeda, A wind-driven model: Application to peculiar transients AT2018cow and iPTF14hls, Astrophys. J. 897, 156 (2020).
- T. Mageshwaran, G. Shaw, and S. Bhattacharyya, Probing the tidal disruption event iPTF16axa with cloudy and disc-wind models, Mon. Not. R. Astron. Soc. 518, 5693 (2023).
- T. W. S. Holoien et al., ASASSN-15oi: A rapidly evolving, luminous tidal disruption event at 216 Mpc, Mon. Not. R. Astron. Soc. 463, 3813 (2016).
- N. Blagorodnova et al., iPTF16fnl: A faint and fast tidal disruption event in an galaxy, Astrophys. J. 844, 46 (2017).
- T. Hung, S. Gezari, N. Blagorodnova, N. Roth, S. B. Cenko, S. R. Kulkarni, A. Horesh, I. Arcavi, C. McCully, L. Yan, R. Lunnan, C. Fremling, Y. Cao, P. E. Nugent, and P. Wozniak, Revisiting optical tidal disruption events with iPTF16axa, Astrophys. J. 842, 29 (2017).
- I. Arcavi et al., A continuum of H- to He-rich tidal disruption candidates with a preference for galaxies, Astrophys. J. 793, 38 (2014).
- T. W. S. Holoien, J. L. Prieto, D. Bersier, C. S. Kochanek, K. Z. Stanek, B. J. Shappee, D. Grupe, U. Basu, J. F. Beacom, J. Brimacombe, J. S. Brown, A. B. Davis, J. Jencson, G. Pojmanski, and D. M. Szczygieł, ASASSN-14ae: A tidal disruption event at 200 Mpc, Mon. Not. R. Astron. Soc. 445, 3263 (2014).
- S. Gezari et al., An ultraviolet-optical flare from the tidal disruption of a helium-rich stellar core, Nature (London) 485, 217 (2012).
- M. Nicholl et al., The tidal disruption event AT2017eqx: Spectroscopic evolution from hydrogen rich to poor suggests an atmosphere and outflow, Mon. Not. R. Astron. Soc. 488, 1878 (2019).
- N. Roth, D. Kasen, J. Guillochon, and E. Ramirez-Ruiz, The X-ray through optical fluxes and line strengths of tidal disruption events, Astrophys. J. 827, 3 (2016).
- L. E. Strubbe and N. Murray, Insights into tidal disruption of stars from PS1-10jh, Mon. Not. R. Astron. Soc. 454, 2321 (2015).
- S. Gezari, T. Hung, N. Blagorodnova, J. D. Neill, L. Yan, S. Kulkarni, S. B. Cenko, I. Arcavi, G. Hosseinzadeh, A. Horesh, A. Gal-Yam, G. Leloudas, R. Walters, S. Ben-Ami, Y. Cao, A. Miller, F. Masci, and P. Nugent, iPTF16fnl: Likely tidal disruption event at 65 Mpc, Astron. Telegram 9433, 1 (2016).
- J. S. Brown, C. S. Kochanek, T. W. S. Holoien, K. Z. Stanek, K. Auchettl, B. J. Shappee, J. L. Prieto, N. Morrell, E. Falco, J. Strader, L. Chomiuk, R. Post, S. Villanueva, Jr., S. Mathur, S. Dong, P. Chen, and S. Bose, The ultraviolet spectroscopic evolution of the low-luminosity tidal disruption event iPTF16fnl, Mon. Not. R. Astron. Soc. 473, 1130 (2018).
- G. J. Ferland, M. Chatzikos, F. Guzmán, M. L. Lykins, P. A. M. van Hoof, R. J. R. Williams, N. P. Abel, N. R. Badnell, F. P. Keenan, R. L. Porter, and P. C. Stancil, The 2017 release cloudy, Rev. Mex. Astron. Astrofis. 53, 385 (2017).
- https://www.nublado.org
- G. J. Ferland, R. L. Porter, P. A. M. van Hoof, R. J. R. Williams, N. P. Abel, M. L. Lykins, G. Shaw, W. J. Henney, and P. C. Stancil, The 2013 release of cloudy, Rev. Mex. Astron. Astrofis. 49, 137 (2013).
- G. Shaw, G. Ferland, and M. Chatzikos, Recent updates of gas-phase chemical reactions and molecular lines of SiS in cloudy, Res. Not. Am. Astron. Soc. 7, 45 (2023).
- G. Shaw, G. J. Ferland, and M. Chatzikos, Recent updates to the gas-phase chemical reactions and molecular lines in cloudy: Their effects on millimeter and submillimeter molecular line predictions, Astrophys. J. 934, 53 (2022).
- R. Pandey, R. Das, G. Shaw, and S. Mondal, Photoionization modeling of the dusty nova V1280 Scorpii, Astrophys. J. 925, 187 (2022).
- A. Mondal, R. Das, G. Shaw, and S. Mondal, A photoionization model grid for novae: Estimation of physical, Mon. Not. R. Astron. Soc. 483, 4884 (2019).
- R. Davies et al., Ionized outflows in local luminous AGN: What are the real densities and outflow rates?, Mon. Not. R. Astron. Soc. 498, 4150 (2020).
- E. J. Parkinson, C. Knigge, K. S. Long, J. H. Matthews, N. Higginbottom, S. A. Sim, and H. A. Hewitt, Accretion disc winds in tidal disruption events: Ultraviolet spectral lines as orientation indicators, Mon. Not. R. Astron. Soc. 494, 4914 (2020).
- G. J. Ferland, Hazy, A brief introduction to cloudy 06.02, University of Kentucky internal report, 2006.
- N. Grevesse, M. Asplund, A. J. Sauval, and P. Scott, The chemical composition of the Sun, Astrophys. Space Sci. 328, 179 (2010).
- N. Grevesse and A. J. Sauval, Standard solar composition, Space Sci. Rev. 85, 161 (1998).
- X. Cao and W.-M. Gu, Limits on luminosity and mass accretion rate of a radiation-pressure-dominated accretion disc, Mon. Not. R. Astron. Soc. 448, 3514 (2015).
- J. Feng, X. Cao, W.-M. Gu, and R.-Y. Ma, A global solution to a slim accretion disk with radiation-driven outflows, Astrophys. J. 885, 93 (2019).
- R. Kippenhahn and A. Weigert, Stellar Structure and Evolution, Astronomy and Astrophysics Library (Springer-Verlag Press, Berlin, 1994), Vol. XVI.
- T. Alexander and P. Kumar, Tidal spin-up of stars in dense stellar cusps around massive black holes, Astrophys. J. 549, 948 (2001).
- T. Mageshwaran and S. Bhattacharyya, Relativistic accretion disc in tidal disruption events, Mon. Not. R. Astron. Soc. 496, 1784 (2020).
- L.-X. Li, R. Narayan, and K. Menou, The giant X-ray flare of NGC 5905: Tidal disruption of a star, a brown dwarf, or a planet?, Astrophys. J. 576, 753 (2002).
- https://cdsarc.cds.unistra.fr/viz-bin/cat/J/ApJ/844/46#/browse
- D. Foreman-Mackey, D. W. Hogg, D. Lang, and J. Goodman, emcee: The MCMC hammer, Publ. Astron. Soc. Pac. 125, 306 (2013).
- A. Ulmer, Flares from the tidal disruption of stars by massive black holes, Astrophys. J. 514, 180 (1999).
- N. J. McConnell and C.-P. Ma, Revisiting the scaling relations of black hole masses and host galaxy properties, Astrophys. J. 764, 184 (2013).
- B. Mockler, J. Guillochon, and E. Ramirez-Ruiz, Weighing black holes using tidal disruption events, Astrophys. J. 872, 151 (2019).
- C. S. Kochanek, Abundance anomalies in tidal disruption events, Mon. Not. R. Astron. Soc. 458, 127 (2016).
- K. D. Alexander, S. van Velzen, A. Horesh, and B. A. Zauderer, Radio properties of tidal disruption events, Space Sci. Rev. 216, 81 (2020).
- Y. Cendes, K. D. Alexander, E. Berger, T. Eftekhari, P. K. G. Williams, and R. Chornock, Radio observations of an ordinary outflow from the tidal disruption event AT2019dsg, Astrophys. J. 919, 127 (2021).
- K. Hayasaki and R. Yamazaki, Disk wind-driven expanding radio-emitting shell in tidal disruption events, Astrophys. J. 954, 5 (2023).
- https://cdsarc.cds.unistra.fr/viz-bin/cat/J/ApJ/844/46#/browse
- https://www.wiserep.org/object/1710
- J. Frank, A. King, and D. J. Raine, Accretion Power in Astrophysics, edited by Juhan Frank, Andrew King, and Derek Raine (Cambridge University Press, Cambridge, England, 2002), pp. 398, ISBN [Amazon][WorldCat].
- C. Dotan and N. J. Shaviv, Super-Eddington slim accretion discs with winds, Mon. Not. R. Astron. Soc. 413, 1623 (2011).
- T. Mageshwaran and K. Hayasaki, Impact of scale-height derivative on general relativistic slim disks in tidal disruption events, Phys. Rev. D 108, 043021 (2023).
- L. E. Strubbe and E. Quataert, Spectroscopic signatures of the tidal disruption of stars by massive black holes, Mon. Not. R. Astron. Soc. 415, 168 (2011).