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Radiation Reaction of Charged Particles Orbiting a Magnetized Schwarzschild Black Hole

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dc.contributor.author Tursunov A.
dc.contributor.author Kološ M.
dc.contributor.author Stuchlík Z.
dc.contributor.author Gal'Tsov D.
dc.date.accessioned 2019-01-22T20:31:46Z
dc.date.available 2019-01-22T20:31:46Z
dc.date.issued 2018
dc.identifier.issn 0004-637X
dc.identifier.uri https://dspace.kpfu.ru/xmlui/handle/net/147575
dc.description.abstract © 2018. The American Astronomical Society. All rights reserved.. In many astrophysically relevant situations, radiation-reaction forces acting upon a charge cannot be ignored, and the question of the location and stability of circular orbits in such a regime arises. The motion of a point charge with radiation reaction in flat spacetime is described by the Lorenz-Dirac (LD) equation, while in curved spacetime it is described by the DeWitt-Brehme (DWB) equation containing the Ricci term and a tail term. We show that for the motion of elementary particles in vacuum metrics, the DWB equation can be reduced to the covariant form of the LD equation, which we use here. Generically, the LD equation is plagued by runaway solutions, so we discuss computational ways of avoiding this problem when constructing numerical solutions. We also use the first iteration of the covariant LD equation, which is the covariant Landau-Lifshitz equation, comparing the results of these two approaches and showing the smallness of the third-order Schott term in the ultrarelativistic case. We calculate the corresponding energy and angular momentum loss of a particle and study the damping of charged particle oscillations around an equilibrium radius. We find that, depending on the orientation of the Lorentz force, the oscillating charged particle either spirals down to the black hole or stabilizes the circular orbit by decaying its oscillations. The latter case leads to the interesting new result of the particle orbit shifting outwards from the black hole. We also discuss the astrophysical relevance of the presented approach and provide estimates of the main parameters of the model.
dc.relation.ispartofseries Astrophysical Journal
dc.subject accretion, accretion disks
dc.subject black hole physics
dc.subject magnetic fields
dc.subject radiation mechanisms: non-thermal
dc.subject relativistic processes
dc.title Radiation Reaction of Charged Particles Orbiting a Magnetized Schwarzschild Black Hole
dc.type Article
dc.relation.ispartofseries-issue 1
dc.relation.ispartofseries-volume 861
dc.collection Публикации сотрудников КФУ
dc.source.id SCOPUS0004637X-2018-861-1-SID85049914225


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  • Публикации сотрудников КФУ Scopus [24551]
    Коллекция содержит публикации сотрудников Казанского федерального (до 2010 года Казанского государственного) университета, проиндексированные в БД Scopus, начиная с 1970г.

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