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Black holes: The membrane paradigm

TLDR
In this article, the physics of black holes are explored in terms of a membrane paradigm which treats the event horizon as a two-dimensional membrane embedded in three-dimensional space, and a 3+1 formalism is used to split Schwarzschild space-time and the laws of physics outside a nonrotating hole.
Abstract
The physics of black holes is explored in terms of a membrane paradigm which treats the event horizon as a two-dimensional membrane embedded in three-dimensional space. A 3+1 formalism is used to split Schwarzschild space-time and the laws of physics outside a nonrotating hole, which permits treatment of the atmosphere in terms of the physical properties of thin slices. The model is applied to perturbed slowly or rapidly rotating and nonrotating holes, and to quantify the electric and magnetic fields and eddy currents passing through a membrane surface which represents a stretched horizon. Features of tidal gravitational fields in the vicinity of the horizon, quasars and active galalctic nuclei, the alignment of jets perpendicular to accretion disks, and the effects of black holes at the center of ellipsoidal star clusters are investigated. Attention is also given to a black hole in a binary system and the interactions of black holes with matter that is either near or very far from the event horizon. Finally, a statistical mechanics treatment is used to derive a second law of thermodynamics for a perfectly thermal atmosphere of a black hole.

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Non-thermal Processes in Black-Hole-Jet Magnetospheres

TL;DR: In this article, a review of the progress achieved in the field based on observations in the very high energy domain is presented, particularly focusing on nonthermal particle acceleration and emission processes that may occur in the rotating magnetospheres originating from accreting, supermassive black hole systems.
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Transfer of energy and angular momentum in the magnetic coupling between a rotating black hole and the surrounding accretion disc

TL;DR: In this article, the transfer of energy and angular momentum in the magnetic coupling of a rotating black hole (BH) with its surrounding accretion disc is discussed based on a mapping relation derived by considering the conservation of magnetic flux with two basic assumptions: (i) the magnetic field on the horizon is constant, and the magnetic fields on the disc surface varies as a power law with the radial coordinate of the disc.
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Screw Instability and Blandford-Znajek Mechanism

Li-Xin Li
- 25 Jan 2000 - 
TL;DR: It is shown that because of the screw instability of the magnetic field, the toroidal components of the magnets, and thus the poloidal currents, cannot exceed the limits given by the Kruskal-Shafranov criterion when the loads are far from the black hole.
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Holographic Non-Abelian Charged Hydrodynamics from the Dynamics of Null Horizons

TL;DR: In this paper, the dynamics of a four-dimensional null hypersurface in a five-dimensional bulk spacetime with Einstein-Yang-Mills fields were analyzed. And the entropy current was derived for some of the leading-order transport coefficients (in the abelian case, all of them) for arbitrary equations of state.
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Fluid Dynamics and Viscosity in Strongly Correlated Fluids

TL;DR: The concept of nearly perfect fluid was introduced in this article, defined by a ratio η/s of shear viscosity to entropy density of order /kB or less.