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Particle Acceleration and the Formation of Relativistic Outflows in Viscous Accretion Disks with Shocks
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Particle Acceleration and the Formation of Relativistic Outflows in Viscous Accretion Disks with Shocks
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In this Letter, we present a new self-consistent theory for the production of the relativistic outflows observed from radio-loud black hole candidates and active galaxies as a result of particle acceleration in hot, viscous accretion disks containing standing, centrifugally-supported isothermal shocks. This is the first work to obtain the structure of such disks for a relatively large value of the Shakura-Sunyaev viscosity parameter ($\alpha=0.1$), and to consider the implications of the shock for the acceleration of relativistic particles in viscous disks. In our approach, the hydrodynamics and the particle acceleration are coupled and the solutions are obtained self-consistently based on a rigorous mathematical method. We find that particle acceleration in the vicinity of the shock can provide enough energy to power the observed relativistic jet in M87.
Forward citations
Cited by 2 Pith papers
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Outflow Behavior from the Transonic Advective Disks: A Hydrodynamical Simulation Study
In 2D hydro simulations, colder transonic accretion disks launch faster, lower-density, more energetic bipolar outflows than hotter disks, and outflow strength rises with viscosity.
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Outflow Behavior from the Transonic Advective Disks: A Hydrodynamical Simulation Study
In viscous hydro simulations, colder transonic advective disks drive faster, higher kinetic-energy and momentum bipolar outflows than hotter disks, and outflow strength increases with viscosity.
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