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Time-Resolved Fuel Density Profiles of the Stagnation Phase of Indirect-Drive Inertial Confinement Implosions.

Time-Resolved Fuel Density Profiles of the Stagnation Phase of Indirect-Drive Inertial Confinement Implosions.

Authors :
Tommasini R
Landen OL
Berzak Hopkins L
Hatchett SP
Kalantar DH
Hsing WW
Alessi DA
Ayers SL
Bhandarkar SD
Bowers MW
Bradley DK
Conder AD
Di Nicola JM
Di Nicola P
Divol L
Fittinghoff D
Gururangan G
Hall GN
Hamamoto M
Hargrove DR
Hartouni EP
Heebner JE
Herriot SI
Hermann MR
Holder JP
Holunga DM
Homoelle D
Iglesias CA
Izumi N
Kemp AJ
Kohut T
Kroll JJ
LaFortune K
Lawson JK
Lowe-Webb R
MacKinnon AJ
Martinez D
Masters ND
Mauldin MP
Milovich J
Nikroo A
Okui JK
Park J
Prantil M
Pelz LJ
Schoff M
Sigurdsson R
Volegov PL
Vonhof S
Zobrist TL
Wallace RJ
Walters CF
Wegner P
Widmayer C
Williams WH
Youngblood K
Edwards MJ
Herrmann MC
Source :
Physical review letters [Phys Rev Lett] 2020 Oct 09; Vol. 125 (15), pp. 155003.
Publication Year :
2020

Abstract

The implosion efficiency in inertial confinement fusion depends on the degree of stagnated fuel compression, density uniformity, sphericity, and minimum residual kinetic energy achieved. Compton scattering-mediated 50-200 keV x-ray radiographs of indirect-drive cryogenic implosions at the National Ignition Facility capture the dynamic evolution of the fuel as it goes through peak compression, revealing low-mode 3D nonuniformities and thicker fuel with lower peak density than simulated. By differencing two radiographs taken at different times during the same implosion, we also measure the residual kinetic energy not transferred to the hot spot and quantify its impact on the implosion performance.

Details

Language :
English
ISSN :
1079-7114
Volume :
125
Issue :
15
Database :
MEDLINE
Journal :
Physical review letters
Publication Type :
Academic Journal
Accession number :
33095614
Full Text :
https://doi.org/10.1103/PhysRevLett.125.155003