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Micron-scale phenomena observed in a turbulent laser-produced plasma

  • G. Rigon
  • , B. Albertazzi
  • , T. Pikuz
  • , P. Mabey
  • , V. Bouffetier
  • , N. Ozaki
  • , T. Vinci
  • , F. Barbato
  • , E. Falize
  • , Y. Inubushi
  • , N. Kamimura
  • , K. Katagiri
  • , S. Makarov
  • , M. J.E. Manuel
  • , K. Miyanishi
  • , S. Pikuz
  • , O. Poujade
  • , K. Sueda
  • , T. Togashi
  • , Y. Umeda
  • M. Yabashi, T. Yabuuchi, G. Gregori, R. Kodama, A. Casner, M. Koenig
  • LULI
  • Osaka University
  • Joint Institute for High Temperatures of the Russian Academy of Sciences
  • Univ. Bordeaux
  • CEA/DAM
  • JASRI/SPring-8
  • RIKEN SPring-8 Center
  • Moscow State University
  • General Atomics
  • National Research Nuclear University MEPhI
  • Université Paris-Saclay
  • Okayama University
  • University of Oxford
  • CEA-CESTA

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

Turbulence is ubiquitous in the universe and in fluid dynamics. It influences a wide range of high energy density systems, from inertial confinement fusion to astrophysical-object evolution. Understanding this phenomenon is crucial, however, due to limitations in experimental and numerical methods in plasma systems, a complete description of the turbulent spectrum is still lacking. Here, we present the measurement of a turbulent spectrum down to micron scale in a laser-plasma experiment. We use an experimental platform, which couples a high power optical laser, an x-ray free-electron laser and a lithium fluoride crystal, to study the dynamics of a plasma flow with micrometric resolution (~1μm) over a large field of view (>1 mm2). After the evolution of a Rayleigh–Taylor unstable system, we obtain spectra, which are overall consistent with existing turbulent theory, but present unexpected features. This work paves the way towards a better understanding of numerous systems, as it allows the direct comparison of experimental results, theory and numerical simulations.

langue originaleAnglais
Numéro d'article2679
journalNature Communications
Volume12
Numéro de publication1
Les DOIs
étatPublié - 1 déc. 2021

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