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Fusion Energy Output Greater than the Kinetic Energy of an Imploding Shell at the National Ignition Facility

  • S. Le Pape
  • , L. F. Berzak Hopkins
  • , L. Divol
  • , A. Pak
  • , E. L. Dewald
  • , S. Bhandarkar
  • , L. R. Bennedetti
  • , T. Bunn
  • , J. Biener
  • , J. Crippen
  • , D. Casey
  • , D. Edgell
  • , D. N. Fittinghoff
  • , M. Gatu-Johnson
  • , C. Goyon
  • , S. Haan
  • , R. Hatarik
  • , M. Havre
  • , D. D.M. Ho
  • , N. Izumi
  • J. Jaquez, S. F. Khan, G. A. Kyrala, T. Ma, A. J. Mackinnon, A. G. Macphee, B. J. Macgowan, N. B. Meezan, J. Milovich, M. Millot, P. Michel, S. R. Nagel, A. Nikroo, P. Patel, J. Ralph, J. S. Ross, N. G. Rice, D. Strozzi, M. Stadermann, P. Volegov, C. Yeamans, C. Weber, C. Wild, D. Callahan, O. A. Hurricane
  • Lawrence Livermore National Laboratory
  • General Atomics
  • University of Rochester Laboratory for Laser Energetics
  • Plasma Science and Fusion Center
  • MST-8, Los Alamos National Laboratory
  • Diamond Materials GmbH

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

251 Citations (Scopus)

Résumé

A series of cryogenic, layered deuterium-tritium (DT) implosions have produced, for the first time, fusion energy output twice the peak kinetic energy of the imploding shell. These experiments at the National Ignition Facility utilized high density carbon ablators with a three-shock laser pulse (1.5 MJ in 7.5 ns) to irradiate low gas-filled (0.3 mg/cc of helium) bare depleted uranium hohlraums, resulting in a peak hohlraum radiative temperature ∼290 eV. The imploding shell, composed of the nonablated high density carbon and the DT cryogenic layer, is, thus, driven to velocity on the order of 380 km/s resulting in a peak kinetic energy of ∼21 kJ, which once stagnated produced a total DT neutron yield of 1.9×1016 (shot N170827) corresponding to an output fusion energy of 54 kJ. Time dependent low mode asymmetries that limited further progress of implosions have now been controlled, leading to an increased compression of the hot spot. It resulted in hot spot areal density (ρr∼0.3 g/cm2) and stagnation pressure (∼360 Gbar) never before achieved in a laboratory experiment.

langue originaleAnglais
Numéro d'article245003
journalPhysical Review Letters
Volume120
Numéro de publication24
Les DOIs
étatPublié - 14 juin 2018
Modification externeOui

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