Dissipative accretion flows around a rotating black hole

被引:13
作者
Das, Santabrata [1 ,2 ]
Chakrabarti, Sandip K. [3 ,4 ]
机构
[1] Sejong Univ, ARCSEC, Seoul, South Korea
[2] Korea Astron & Space Sci Inst, Taejon 305348, South Korea
[3] SN Bose Natl Ctr Basic Sci, Kolkata 700098, India
[4] Indian Ctr Space Phys, Kolkata 700084, India
关键词
accretion; accretion disc; black hole physics; shock waves;
D O I
10.1111/j.1365-2966.2008.13564.x
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We study the dynamical structure of a cooling dominated rotating accretion flow around a spinning black hole. We show that non-linear phenomena such as shock waves can be studied in terms of only three flow parameters, namely the specific energy (epsilon), the specific angular momentum (lambda) and the accretion rate (m) over dot of the flow. We present all possible accretion solutions. We find that a significant region of the parameter space in the epsilon-lambda plane allows global accretion shock solutions. The effective area of the parameter space for which the Rankine-Hugoniot shocks are possible is maximum when the flow is dissipation-free. It decreases with the increase of cooling effects and finally disappears when the cooling is high enough. We show that shock forms further away when the black hole is rotating compared to the solution around a Schwarzschild black hole with identical flow parameters at a large distance. However, in a normalized sense, the flow parameters for which the shocks form around the rotating black holes are produced shocks closer to the black hole. The location of the shock is also dictated by the cooling efficiency in that higher the accretion rate (m) over dot, the closer is the shock location. We believe that some of the high-frequency quasi-periodic oscillations may be due to the flows with higher accretion rate around the rotating black holes.
引用
收藏
页码:371 / 378
页数:8
相关论文
共 50 条
[21]   Standing shocks in magnetized dissipative accretion flow around black holes [J].
Sarkar, Biplob ;
Das, Santabrata .
JOURNAL OF ASTROPHYSICS AND ASTRONOMY, 2018, 39 (01)
[22]   Standing shocks in magnetized dissipative accretion flow around black holes [J].
Biplob Sarkar ;
Santabrata Das .
Journal of Astrophysics and Astronomy, 2018, 39
[23]   Spallation of iron in black hole accretion flows [J].
Skibo, JG .
ASTROPHYSICAL JOURNAL, 1997, 478 (02) :522-526
[24]   Standing shocks in transmagnetosonic accretion flows onto a black hole [J].
Takahashi, Masaaki ;
Goto, Junya ;
Fukumura, Keigo ;
Rilett, Darrell ;
Tsuruta, Sachiko .
ASTROPHYSICAL JOURNAL, 2006, 645 (02) :1408-1420
[25]   Hydrodynamic simulations of viscous accretion flows around black holes [J].
Giri, Kinsuk ;
Chakrabarti, Sandip K. .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2012, 421 (01) :666-678
[26]   Effect of magnetic flux advection on the dynamics of shock in accretion flow around a rotating black hole [J].
Biplob Sarkar ;
Anjali Rao .
Research in Astronomy and Astrophysics, 2020, 20 (03) :126-137
[27]   Observational signatures of black hole accretion: rotating versus spherical flows with tilted magnetic fields [J].
Jia, He ;
White, Christopher J. ;
Quataert, Eliot ;
Ressler, Sean M. .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2022, 515 (01) :1392-1403
[28]   DYNAMICAL EVOLUTION OF STAR-CLUSTERS AROUND A ROTATING BLACK-HOLE WITH AN ACCRETION DISC [J].
RAUCH, KP .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 1995, 275 (03) :628-640
[29]   Effect of magnetic flux advection on the dynamics of shock in accretion flow around a rotating black hole [J].
Sarkar, Biplob ;
Rao, Anjali .
RESEARCH IN ASTRONOMY AND ASTROPHYSICS, 2020, 20 (03)
[30]   Properties of two-temperature dissipative accretion flow around black holes [J].
Dihingia, Indu K. ;
Das, Santabrata ;
Mandal, Samir .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2018, 475 (02) :2164-2177