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    A Kiloparsec-scale Internal Shock Collision in the Jet of a Nearby Radio Galaxy

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    https://www.nature.com/articles/nature14481
    Permanent Link
    https://doi.org/10.1038/nature14481
    http://hdl.handle.net/11603/19645
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    • UMBC Center for Space Sciences and Technology (CSST) / Center for Research and Exploration in Space Sciences & Technology II (CRSST II)
    • UMBC Faculty Collection
    • UMBC Physics Department
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    Author/Creator
    Meyer, Eileen T.
    Georganopoulos, Markos
    Sparks, William B.
    Perlman, Eric
    Marel, Roeland P. van der
    Anderson, Jay
    Sohn, Sangmo Tony
    Biretta, John
    Norman, Colin
    Chiaberge, Marco
    Date
    2015-05-27
    Type of Work
    11 pages
    Text
    journal articles postprints
    Citation of Original Publication
    Meyer, E., Georganopoulos, M., Sparks, W. et al. A kiloparsec-scale internal shock collision in the jet of a nearby radio galaxy. Nature 521, 495–497 (2015). https://doi.org/10.1038/nature14481
    Rights
    This item is likely protected under Title 17 of the U.S. Copyright Law. Unless on a Creative Commons license, for uses protected by Copyright Law, contact the copyright holder or the author.
    Abstract
    Jets of highly energized plasma with relativistic velocities are associated with black holes ranging in mass from a few times that of the Sun to the billion-solar-mass black holes at the centres of galaxies. A popular but unconfirmed hypothesis to explain how the plasma is energized is the ‘internal shock model’, in which the relativistic flow is unsteady. Faster components in the jet catch up to and collide with slower ones, leading to internal shocks that accelerate particles and generate magnetic fields. This mechanism can explain the variable, high-energy emission from a diverse set of objects with the best indirect evidence being the unseen fast relativistic flow inferred to energize slower components in X-ray binary jets. Mapping of the kinematic profiles in resolved jets has revealed precessing and helical patterns in X-ray binaries, apparent superluminal motions, and the ejection of knots (bright components) from standing shocks in the jets of active galaxies. Observations revealing the structure and evolution of an internal shock in action have, however, remained elusive, hindering measurement of the physical parameters and ultimate efficiency of the mechanism. Here we report observations of a collision between two knots in the jet of nearby radio galaxy 3C 264. A bright knot with an apparent speed of (7.0 ± 0.8)c, where c is the speed of light in a vacuum, is in the incipient stages of a collision with a slower-moving knot of speed (1.8 ± 0.5)c just downstream, resulting in brightening of both knots—as seen in the most recent epoch of imaging.


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    Albin O. Kuhn Library & Gallery
    University of Maryland, Baltimore County
    1000 Hilltop Circle
    Baltimore, MD 21250
    www.umbc.edu/scholarworks

    Contact information:
    Email: scholarworks-group@umbc.edu
    Phone: 410-455-3021


    If you wish to submit a copyright complaint or withdrawal request, please email mdsoar-help@umd.edu.