3D morphology of the hot spot and shell of warm ICF implosions at OMEGA

ORAL

Abstract

The 3D morphology of the hot spot and surrounding high-density shell of warm implosions at OMEGA have been measured using knock-on deuteron imaging (KODI). Data is presented from experiments in which several absolutely co-aligned penumbral images of knock-on deuterons were obtained in three nearly orthogonal directions. The KODI technique utilizes the fact that neutrons from DT-fusion reactions in the central hot spot of an ICF implosion elastically scatter deuterons as they transit the surrounding material. The energy of these knock-on deuterons depends on the scattering angle, which means that energy-resolving knock-on deuteron images provides information about different parts of the implosion. The most energetic knock-on deuterons are forward-scattered and probe the shape of the central hot spot, whereas lower-energy knock-on deuterons are made by side-scattering or ranging in the shell and carry information about the dense shell around the hot spot. These measurements provide new insights into the causes and effects of low-mode asymmetries in ICF implosions.

*This work was supported in part by the U.S. DOE, the MIT/NNSA CoE, and LLE.

Publication: J. Kunimune, H. Rinderknecht, P. Adrian, J. Frenje, S. Regan, F. Séguin, M. Gatu Johnson, R. Bahukutumbi, J. Knauer, and B. Bachmann. "Knock-on deuteron imaging for diagnosing the morphology of an ICF implosion at OMEGA". Planning to submit to Rev. Sci. Instrum this year.

Presenters

  • Justin H Kunimune

    • Massachusetts Institute of Technology
    • Massachusetts Institute of Technology MI

Authors

  • Justin H Kunimune

    • Massachusetts Institute of Technology
    • Massachusetts Institute of Technology MI
  • Hans Rinderknecht

    • University of Rochester Laboratory for Laser Energetics
    • Laboratory for Laser Energetics, U. of Rochester
    • Laboratory for Laser Energetics - Rochester
    • Lab for Laser Energetics
    • Laboratory for Laser Energetics
    • Laboratory for Laser Energetics, University of Rochester
    • University of Rochester
  • Patrick J Adrian

    • Massachusetts Institute of Technology (MIT)
    • Massachusetts Institute of Technology
    • Massachusetts Institute of Technology MIT
    • Massachusetts Institute of Technology MI
  • Johan A Frenje

    • Massachusetts Institute of Technology MIT
    • MIT PSFC
    • Massachusetts Institute of Technology (MIT)
  • Sean P Regan

    • Laboratory for Laser Energetics, University of Rochester
    • University of Rochester
    • Laboratory for Laser Energetics, U. of Rochester
    • Laboratory for Laser Energetics
    • Lab for Laser Energetics
  • Fredrick H Seguin

    • Massachusetts Institute of Technology MIT
  • Maria Gatu-Johnson

    • MIT Plasma Science and Fusion Center
    • MIT PSFC
    • MIT
    • Massachusetts Institute of Technology (MIT)
    • Massachusetts Institute of Technology MI
  • Radha Bahukutumbi

    • University of Rochester
    • Laboratory for Laser Energetics, University of Rochester
  • James P Knauer

    • Laboratory for Laser Energetics, U. of Rochester
    • University of Rochester
    • Laboratory for Laser Energetics, University of Rochester
  • Benjamin Bachmann

    • Lawrence Livermore Natl Lab
    • LLNL
  • Brian Appelbe

    • Imperial College London
    • Imperial College, London
  • Aidan C Crilly

    • Imperial College London
    • CIFS, The Blackett Laboratory, Imperial College London
  • Varchas Gopalaswamy

    • Laboratory for Laser Energetics, University of Rochester
    • Lab for Laser Energetics
    • Laboratory for Laser Energetics, U. of Rochester
    • Laboratory for Laser Energetics - Rochester
    • University of Rochester
  • Owen M Mannion

    • University of Rochester
    • Laboratory for Laser Energetics, University of Rochester
  • Wolfgang R Theobald

    • University of Rochester
    • Laboratory for Laser Energetics, University of Rochester
    • Laboratory for Laser Energetics, U. of Rochester
    • Lab for Laser Energetics