Properties of relativistic hot accretion flow around a rotating black hole with radially varying viscosity

被引:3
|
作者
Singh, Monu [1 ]
Das, Santabrata [1 ]
机构
[1] Indian Inst Technol Guwahati, Dept Phys, Gauhati 781039, Assam, India
关键词
accretion; accretion disk; black hole physics; hydrodynamics; shock waves; 3-DIMENSIONAL MAGNETOHYDRODYNAMIC SIMULATIONS; ADVECTION-DOMINATED ACCRETION; QUASI-PERIODIC OSCILLATIONS; STANDING SHOCKS; DYNAMICAL STRUCTURE; OUTFLOW RATES; GRS 1915+105; SOFT STATE; DISKS; INSTABILITY;
D O I
10.1007/s10509-023-04263-6
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We examine the effect of the variable viscosity parameter (alpha) in relativistic, low angular momentum advective accretion flow around rotating black holes. Following the recent simulation studies of the magnetohydrodynamic disk that reveal the radial variation of alpha(r), we theoretically investigate the properties of the global transonic accretion flow considering a onedimensional power- law prescription of the viscosity parameter as alpha(r) proportional to r(theta), where the viscosity exponent. is a constant. In doing so, we adopt the relativistic equation of state and solve the fluid equations that govern the flow motion inside the disk. We find that depending on the flow parameters, accretion flow experiences centrifugally supported shock transitions and such shocked accretion solutions continue to exist for wide ranges of the flow energy, angular momentum, accretion rate, and viscosity exponent, respectively. Due to shock compression, the hot and dense postshock flow (hereafter PSC) can produce the high-energy radiations after reprocessing the soft photons from the preshock flow via inverse Comptonization. Since PSC is usually described using shock radius (r(s)), compression ratio (R), and shock strength (S), we study the role of theta in detemining r(s), R, and S, respectively. Moreover, we obtain the parameter space for a shock and find that the possibility of shock formation diminishes as theta is increased. Finally, we compute the limiting value of. (i.e., theta(max)) that admits a shock and find that flow can sustain more viscosity when it accretes onto a rapidly rotating (a(k) -> 1) black hole in comparison to a weakly rotating (a(k) -> 0) black hole.
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页数:17
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