Double flows anchored in a Kerr black hole horizon – I. Meridionally self-similar MHD models with loading terms

Author:

Chantry L12ORCID,Cayatte V1,Sauty C13,Vlahakis N4,Tsinganos K4

Affiliation:

1. Laboratoire Univers et Théories , Observatoire de Paris, Université PSL, Université Paris Cité, CNRS, F-92190 Meudon, France

2. Dipartimento di Fisica , Università degli Studi di Torino, via Pietro Giuria 1, I-10125 Torino, Italy

3. Laboratoire Univers et Particules de Montpellier (LUPM), Université Montpellier , CNRS/IN2P3, CC72, place Eugéne Bataillon, F-34095, Montpellier Cedex 5, France

4. Section of Astrophysics, Astronomy and Mechanics, Department of Physics, University of Athens , Panepistimiopolis Zografos, Athens 15783, Greece

Abstract

ABSTRACT Recent observations of supermassive black holes have brought us new information on their magnetospheres. In this study, we attempt a theoretical modelling of the coupling of black holes with their jets and discs, via three innovations. First, we propose a semi-analytical MHD description of a steady relativistic inflow–outflow structure characteristic to the extraction of the hole rotational energy. The mass-loading is ensured in a thin layer, the stagnation surface, by a two-photon pair production originating to a gamma-ray emission from the surrounding disc. The double flow is described near the polar axis by an axisymmetric meridionally self-similar MHD model. Secondly, the inflow and outflow solutions are crossing the MHD critical points and are matched at the stagnation surface. Knowledge of the MHD field on the horizon gives us the angular momentum and energy extracted from the black hole. Finally, we illustrate the model with three specific examples of double-flow solutions by varying the energetic interaction between the MHD field and the rotating black hole. When the isorotation frequency is half of the black hole one, the extracted Poynting flux is comparable to the one obtained using the force-free assumption. In two of the presented solutions, the Penrose process dominates at large colatitudes, while the third is Poynting flux dominated at mid-colatitudes. Mass injection rate estimations, from disc luminosity and inner radius, give an upper limit just above the values obtained for two solutions. This model is pertinent to describe the flows near the polar axis, where pair production is more efficient.

Funder

Università degli Studi di Torino

INSU,CNRS

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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