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Developed turbulence and nonlinear amplification of magnetic fields in laboratory and astrophysical plasmas

  • Jena Meinecke
  • , Petros Tzeferacos
  • , Anthony Bell
  • , Robert Bingham
  • , Robert Clarke
  • , Eugene Churazov
  • , Robert Crowston
  • , Hugo Doyle
  • , R. Paul Drake
  • , Robert Heathcote
  • , Michel Koenig
  • , Yasuhiro Kuramitsu
  • , Carolyn Kuranz
  • , Dongwook Lee
  • , Michael MacDonald
  • , Christopher Murphy
  • , Margaret Notley
  • , Hye Sook Park
  • , Alexander Pelka
  • , Alessandra Ravasio
  • Brian Reville, Youichi Sakawa, Willow Wan, Nigel Woolsey, Roman Yurchak, Francesco Miniati, Alexander Schekochihin, Don Lamb, Gianluca Gregori
  • University of Oxford
  • University of Chicago
  • CCLRC Rutherford Appleton Laboratory
  • University of Strathclyde
  • Max Planck Institute for Astrophysics
  • Space Research Institute (IKI)
  • University of York
  • University of Michigan, Ann Arbor
  • National Central University
  • Osaka University
  • University of California, Santa Cruz
  • Lawrence Livermore National Laboratory
  • LULI
  • Institute of Radiooncology - OncoRay
  • Queen's University of Belfast
  • ETH Zurich

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

The visible matter in the universe is turbulent and magnetized. Turbulence in galaxy clusters is produced by mergers and by jets of the central galaxies and believed responsible for the amplification of magnetic fields. We report on experiments looking at the collision of two laser-produced plasma clouds, mimicking, in the laboratory, a cluster merger event. By measuring the spectrum of the density fluctuations, we infer developed, Kolmogorov-like turbulence. From spectral line broadening, we estimate a level of turbulence consistent with turbulent heating balancing radiative cooling, as it likely does in galaxy clusters. We show that the magnetic field is amplified by turbulent motions, reaching a nonlinear regime that is a precursor to turbulent dynamo. Thus, our experiment provides a promising platform for understanding the structure of turbulence and the amplification of magnetic fields in the universe.

langue originaleAnglais
Pages (de - à)8211-8215
Nombre de pages5
journalProceedings of the National Academy of Sciences of the United States of America
Volume112
Numéro de publication27
Les DOIs
étatPublié - 7 juil. 2015

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