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Super-Eddington Mechanical Power of an Accreting Black Hole in M83Mass accretion onto black holes releases energy in the form of radiation and outflows. Although the radiative flux cannot substantially exceed the Eddington limit, at which the outgoing radiation pressure impedes the inflow of matter, it remains unclear whether the kinetic energy flux is bounded by this same limit. Here, we present the detection of a radio-optical structure, powered by outflows from a non-nuclear black hole. Its accretion disk properties indicate that this black hole is less than 100 solar masses. The optical-infrared line emission implies an average kinetic power of 3 × 10(exp 40) erg second(exp -1), higher than the Eddington luminosity of the black hole. These results demonstrate kinetic power exceeding the Eddington limit over a sustained period, which implies greater ability to influence the evolution of the black hole's environment.
Document ID
20150011657
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
External Source(s)
Authors
Soria, R.
(Curtin Univ. of Technology Perth, Australia)
Long, K. S.
(Space Telescope Science Inst. Baltimore, MD, United States)
Blair, W. P.
(Space Telescope Science Inst. Baltimore, MD, United States)
Godfrey, L.
(Radio Sterrenwacht Dwingeloo, Netherlands)
Kuntz, K. D.
(Johns Hopkins Univ. Baltimore, MD, United States)
Lenc, E.
(Sydney Univ. Australia)
Stockdale, C.
(Marquette Univ. Milwaukee, WI, United States)
Winkler, P. F.
(Middlebury Coll. VT, United States)
Date Acquired
June 26, 2015
Publication Date
February 27, 2014
Publication Information
Publication: Science Magazine
Publisher: HighWire Press
Volume: 343
Issue: 6177
Subject Category
Astrophysics
Report/Patent Number
GSFC-E-DAA-TN23868
Funding Number(s)
CONTRACT_GRANT: CE110001020
CONTRACT_GRANT: G01-12115
CONTRACT_GRANT: NSF-AST-090856
CONTRACT_GRANT: NNX14AB76A
CONTRACT_GRANT: GO-12513-01
OTHER: DP-120102393
CONTRACT_GRANT: NAS8-03060
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
uper-Eddington Mechanical Power
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