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Delettrez

Showing results (31-40 of 46) with videos related to

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Physical Review Letters|January 30, 2018
Erratum: Measurement of Body-Centered-Cubic Aluminum at 475 GPa [Phys. Rev. Lett. 119, 175702 (2017)]D N Polsin, D E Fratanduono, J R Rygg, et al.
Physical Review Letters|June 4, 2008
Role of hot-electron preheating in the compression of direct-drive imploding targets with cryogenic D2 ablatorsV A Smalyuk, D Shvarts, R Betti, et al.
Physical Review Letters|June 1, 2004
Dependence of shell mix on feedthrough in direct drive inertial confinement fusionS P Regan, J A Delettrez, V N Goncharov, et al.
Physical Review Letters|April 22, 2014
First observations of nonhydrodynamic mix at the fuel-shell interface in shock-driven inertial confinement implosionsH G Rinderknecht, H Sio, C K Li, et al.
Physical Review Letters|January 15, 2011
Scaling hot-electron generation to high-power, kilojoule-class laser-solid interactionsP M Nilson, A A Solodov, J F Myatt, et al.
Physical Review Letters|December 9, 2017
Measurement of Body-Centered-Cubic Aluminum at 475 GPaD N Polsin, D E Fratanduono, J R Rygg, et al.
Physical Review Letters|March 10, 2012
Evidence for stratification of deuterium-tritium fuel in inertial confinement fusion implosionsD T Casey, J A Frenje, M Gatu Johnson, et al.
Physical Review Letters|August 23, 2002
Shell mix in the compressed core of spherical implosionsS P Regan, J A Delettrez, F J Marshall, et al.
Physical Review Letters|May 27, 2014
Exploration of the transition from the hydrodynamiclike to the strongly kinetic regime in shock-driven implosionsM J Rosenberg, H G Rinderknecht, N M Hoffman, et al.
Physical Review Letters|June 4, 2008
High-areal-density fuel assembly in direct-drive cryogenic implosionsT C Sangster, V N Goncharov, P B Radha, et al.
Pageof 5

Showing results (31-40 of 46) with videos related to

Sort By:
Pageof 5
Physical Review Letters|January 30, 2018
Erratum: Measurement of Body-Centered-Cubic Aluminum at 475 GPa [Phys. Rev. Lett. 119, 175702 (2017)]D N Polsin, D E Fratanduono, J R Rygg, et al.
Physical Review Letters|June 4, 2008
Role of hot-electron preheating in the compression of direct-drive imploding targets with cryogenic D2 ablatorsV A Smalyuk, D Shvarts, R Betti, et al.
Physical Review Letters|June 1, 2004
Dependence of shell mix on feedthrough in direct drive inertial confinement fusionS P Regan, J A Delettrez, V N Goncharov, et al.
Physical Review Letters|April 22, 2014
First observations of nonhydrodynamic mix at the fuel-shell interface in shock-driven inertial confinement implosionsH G Rinderknecht, H Sio, C K Li, et al.
Physical Review Letters|January 15, 2011
Scaling hot-electron generation to high-power, kilojoule-class laser-solid interactionsP M Nilson, A A Solodov, J F Myatt, et al.
Physical Review Letters|December 9, 2017
Measurement of Body-Centered-Cubic Aluminum at 475 GPaD N Polsin, D E Fratanduono, J R Rygg, et al.
Physical Review Letters|March 10, 2012
Evidence for stratification of deuterium-tritium fuel in inertial confinement fusion implosionsD T Casey, J A Frenje, M Gatu Johnson, et al.
Physical Review Letters|August 23, 2002
Shell mix in the compressed core of spherical implosionsS P Regan, J A Delettrez, F J Marshall, et al.
Physical Review Letters|May 27, 2014
Exploration of the transition from the hydrodynamiclike to the strongly kinetic regime in shock-driven implosionsM J Rosenberg, H G Rinderknecht, N M Hoffman, et al.
Physical Review Letters|June 4, 2008
High-areal-density fuel assembly in direct-drive cryogenic implosionsT C Sangster, V N Goncharov, P B Radha, et al.
Pageof 5