Near-vacuum hohlraums for driving fusion implosions with high density carbon ablators

被引:81
|
作者
Hopkins, L. F. Berzak [1 ]
Le Pape, S. [1 ]
Divol, L. [1 ]
Meezan, N. B. [1 ]
Mackinnon, A. J. [1 ]
Ho, D. D. [1 ]
Jones, O. S. [1 ]
Khan, S. [1 ]
Milovich, J. L. [1 ]
Ross, J. S. [1 ]
Amendt, P. [1 ]
Casey, D. [1 ]
Celliers, P. M. [1 ]
Pak, A. [1 ]
Peterson, J. L. [1 ]
Ralph, J. [1 ]
Rygg, J. R. [1 ]
机构
[1] Lawrence Livermore Natl Lab, Livermore, CA 94550 USA
关键词
NATIONAL IGNITION FACILITY; INTERPENETRATION; SIMULATIONS;
D O I
10.1063/1.4921151
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Recent experiments at the National Ignition Facility [M. J. Edwards et al., Phys. Plasmas 20, 070501 (2013)] have explored driving high-density carbon ablators with near-vacuum hohlraums, which use a minimal amount of helium gas fill. These hohlraums show improved efficiency relative to conventional gas-filled hohlraums in terms of minimal backscatter, minimal generation of supra-thermal electrons, and increased hohlraum-capsule coupling. Given these advantages, near-vacuum hohlraums are a promising choice for pursuing high neutron yield implosions. Long pulse symmetry control, though, remains a challenge, as the hohlraum volume fills with material. Two mitigation methodologies have been explored, dynamic beam phasing and increased case-to-capsule ratio (larger hohlraum size relative to capsule). Unexpectedly, experiments have demonstrated that the inner laser beam propagation is better than predicted by nominal simulations, and an enhanced beam propagation model is required to match measured hot spot symmetry. Ongoing work is focused on developing a physical model which captures this enhanced propagation and on utilizing the enhanced propagation to drive longer laser pulses than originally predicted in order to reach alpha-heating dominated neutron yields. (c) 2015 AIP Publishing LLC.
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页数:8
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