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Measurement of hydrodynamic instability growth during the deceleration of an inertial confinement fusion implosion

  • L. A. Pickworth
  • , V. A. Smalyuk
  • , B. A. Hammel
  • , C. Weber
  • , D. S. Clark
  • , H. F. Robey
  • , A. G. MacPhee
  • , S. Le Pape
  • , D. T. Casey
  • , L. Berzak-Hopkins
  • , A. Zylstra
  • , A. Kritcher
  • , C. F. Walters
  • , S. D. Bhandarkar
  • , M. Stadermann
  • , S. Johnson
  • , S. Diaz
  • , M. Ratledge
  • , N. Alfonso
  • , O. N. Landen
  • A. E. Pak, N. Izumi, S. F. Khan, L. R. Benedetti, B. Lahmann, E. Hartouni
  • Lawrence Livermore National Laboratory
  • General Atomics
  • Massachusetts Institute of Technology

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

This paper presents an exploration of potential mitigation methods for the gas fuel fill tube in Inertial Confinement Fusion (ICF) implosions at the National Ignition Facility (NIF), and the impact of hydrodynamic growth seeded from other target imperfections using a specialized low convergence implosion experiment. Enhanced x-ray self- emission of this experiment design allows the impact of hydrodynamic growth through the deceleration phase of the implosion to be examined. Experiments are presented comparing the perturbation visible during the implosion deceleration that are seeded by the fill tube, through varying the initial geometry in otherwise similar implosions. We further extend the experiment to explore the impact of isolated high atomic number 'dots' of 5 and 20 µm diameter. These isolated dots are compared in two different ‘High Density Carbon’ ablator designs in a gold hohlraum. The experiment series finds a correlation to number of high frequency self-emission features observed in deceleration and degradation in total Deuterium-Deuterium neutron yield.

langue originaleAnglais
Numéro d'article100817
journalHigh Energy Density Physics
Volume37
Les DOIs
étatPublié - 1 nov. 2020
Modification externeOui

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