Bulletin of the American Physical Society
63rd Annual Meeting of the APS Division of Plasma Physics
Volume 66, Number 13
Monday–Friday, November 8–12, 2021; Pittsburgh, PA
Session ZI02: ICF: Implosions, Burn and Hohlraum Physics
9:30 AM–12:30 PM,
Friday, November 12, 2021
Room: Ballroom C
Chair: John Moody, Lawrence Livermore National Laboratory
Abstract: ZI02.00006 : Precision Measurements of Hohlraum L-shell Preheating in Tungsten-based Double Shells and their Consequences for Shape and Stability Control
12:00 PM–12:30 PM
Presenter:
Eric N Loomis
(Los Alamos Natl Lab)
Authors:
Eric N Loomis
(Los Alamos Natl Lab)
Harry F Robey
(Los Alamos National Laboratory)
David Stark
(Los Alamos National Laboratory)
Brian M Haines
(Los Alamos National Laboratory)
Tana Morrow
(Los Alamos National Laboratory)
Hongwei Xu
(General Atomics)
Marius Millot
(Lawrence Livermore Natl Lab)
Peter M Celliers
(Lawrence Livermore Natl Lab)
David S Montgomery
(Los Alamos Natl Lab)
Joshua P Sauppe
(Los Alamos National Laboratory)
Ryan F Sacks
(Los Alamos National Laboratory)
Irina Sagert
(Los Alamos National Laboratory)
Paul A Keiter
(Los Alamos National Laboratory)
In low-gas-fill, low-laser-backscatter hohlraums at the National Ignition Facility (NIF), significant levels of Au M-shell and L-shell radiation are produced as potential sources of preheat. Current double shell implosions use Al ablators to block M-shell from penetrating the capsule leaving L-shell as the primary source of preheat to the high-atomic-number interior pusher. Because L-shell is produced only at multi-keV, non-LTE plasma conditions, it is exceedingly difficult to calculate. To this end we have made the first measurements of the Au L-shell symmetry environment in NIF hohlraums, which used dual-axis VISAR interferometry [H.F. Robey et al., Phys. Rev. Lett. 108 (2012)] to record tungsten pusher motion to within 5%. The multi-Mbar tungsten shock induced by the L-shell radiation was found to be 60% stronger at the pole relative to the equator, which with improved hohlraum modeling we can now quantify its impact on the mode 2 shape of the pusher and DT fuel and account for it by tuning laser power balance. These measurements have also placed more rigorous constraints on Rayleigh-Taylor instability (RTI) growth calculations in double shells. This is of particular importance in designing effective engineered density gradients to control RTI in the presence of changing pre-collision conditions due to preheat.
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