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Exploration of the Transition from the Hydrodynamiclike to the Strongly Kinetic Regime in Shock-Driven Implosions

Authors :
Massachusetts Institute of Technology. Department of Physics
Massachusetts Institute of Technology. Plasma Science and Fusion Center
Rosenberg, Michael Jonathan
Rinderknecht, Hans George
Zylstra, Alex Bennett
Li, Chikang
Seguin, Fredrick Hampton
Sio, Hong Weng
Gatu Johnson, Maria
Frenje, Johan A.
Petrasso, Richard D.
Kagan, Grigory Alexandrovich
Hoffman, N. M.
Amendt, P. A.
Atzeni, S.
Glebov, V. Yu.
Stoeckl, C.
Seka, W.
Marshall, F. J.
Delettrez, J. A.
Sangster, T. C.
Betti, R.
Goncharov, V. N.
Meyerhofer, D. D.
Skupsky, S.
Bellei, C.
Pino, J.
Wilks, S. C.
Molvig, Kim
Nikroo, A.
Massachusetts Institute of Technology. Department of Physics
Massachusetts Institute of Technology. Plasma Science and Fusion Center
Rosenberg, Michael Jonathan
Rinderknecht, Hans George
Zylstra, Alex Bennett
Li, Chikang
Seguin, Fredrick Hampton
Sio, Hong Weng
Gatu Johnson, Maria
Frenje, Johan A.
Petrasso, Richard D.
Kagan, Grigory Alexandrovich
Hoffman, N. M.
Amendt, P. A.
Atzeni, S.
Glebov, V. Yu.
Stoeckl, C.
Seka, W.
Marshall, F. J.
Delettrez, J. A.
Sangster, T. C.
Betti, R.
Goncharov, V. N.
Meyerhofer, D. D.
Skupsky, S.
Bellei, C.
Pino, J.
Wilks, S. C.
Molvig, Kim
Nikroo, A.
Source :
American Physical Society
Publication Year :
2014

Abstract

Clear evidence of the transition from hydrodynamiclike to strongly kinetic shock-driven implosions is, for the first time, revealed and quantitatively assessed. Implosions with a range of initial equimolar D[superscript 3]He gas densities show that as the density is decreased, hydrodynamic simulations strongly diverge from and increasingly overpredict the observed nuclear yields, from a factor of ∼2 at 3.1 mg/cm[superscript 3] to a factor of 100 at 0.14 mg/cm[superscript 3]. (The corresponding Knudsen number, the ratio of ion mean-free path to minimum shell radius, varied from 0.3 to 9; similarly, the ratio of fusion burn duration to ion diffusion time, another figure of merit of kinetic effects, varied from 0.3 to 14.) This result is shown to be unrelated to the effects of hydrodynamic mix. As a first step to garner insight into this transition, a reduced ion kinetic (RIK) model that includes gradient-diffusion and loss-term approximations to several transport processes was implemented within the framework of a one-dimensional radiation-transport code. After empirical calibration, the RIK simulations reproduce the observed yield trends, largely as a result of ion diffusion and the depletion of the reacting tail ions.<br />United States. Dept. of Energy (Grant DE-NA0001857)<br />United States. Dept. of Energy (Grant DE-FC52-08NA28752)<br />University of Rochester. Fusion Science Center (5-24431)<br />National Laser User’s Facility (DE-NA0002035)<br />University of Rochester. Laboratory for Laser Energetics (415935-G)<br />Lawrence Livermore National Laboratory (B597367)

Details

Database :
OAIster
Journal :
American Physical Society
Notes :
application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.ocn890234962
Document Type :
Electronic Resource