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  Probing cosmic-ray transport with radio synchrotron harps in the Galactic center

Thomas, T., Pfrommer, C., & Enßlin, T. (2020). Probing cosmic-ray transport with radio synchrotron harps in the Galactic center. The Astrophysical Journal Letters, 890(2): L18. doi:10.3847/2041-8213/ab7237.

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Probing Cosmic-Ray Transport with Radio Synchrotron Harps in the Galactic Center.pdf (Any fulltext), 462KB
 
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Thomas, Timon, Author
Pfrommer, Christoph, Author
Enßlin, Torsten1, Author           
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1Computational Structure Formation, MPI for Astrophysics, Max Planck Society, ou_2205642              

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 Abstract: Recent observations with the MeerKAT radio telescope reveal a unique population of faint nonthermal filaments pervading the central molecular zone, a region rich in molecular gas near the Galactic center. Some of those filaments are organized into groups of almost parallel filaments, seemingly sorted by their length, so that their morphology resembles a harp with radio-emitting "strings." We argue that the synchrotron-emitting GeV electrons of these radio harps have been consecutively injected by the same source (a massive star or pulsar) into spatially intermittent magnetic fiber bundles within a magnetic flux tube or via time-dependent injection events. After escaping from this source, the propagation of cosmic-ray (CR) electrons inside a flux tube is governed by the theory of CR transport. We propose to use observations of radio harp filaments to gain insight into the specifics of CR propagation along magnetic fields of which there are two principle modes: CRs could either stream with self-excited magnetohydrodynamic waves or diffuse along the magnetic field. To disentangle these possibilities, we conduct hydrodynamical simulations of either purely diffusing or streaming CR electrons and compare the resulting brightness distributions to the observed synchrotron profiles of the radio harps. We find compelling evidence that CR streaming is the dominant propagation mode for GeV CRs in one of the radio harps. Observations at higher angular resolution should detect more radio harps and may help to disentangle projection effects of the possibly three-dimensional flux-tube structure of the other radio harps.

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 Dates: 2020-02-14
 Publication Status: Published online
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 Identifiers: DOI: 10.3847/2041-8213/ab7237
Other: LOCALID: 3244639
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Title: The Astrophysical Journal Letters
  Other : Astrophys. J. Lett.
Source Genre: Journal
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Publ. Info: Chicago, IL : University of Chicago Press for the American Astronomical Society
Pages: - Volume / Issue: 890 (2) Sequence Number: L18 Start / End Page: - Identifier: ISSN: 2041-8205
CoNE: https://pure.mpg.de/cone/journals/resource/954922828215