The physics basis for ignition using indirect-drive targets on the National Ignition Facility

被引:1694
|
作者
Lindl, JD [1 ]
Amendt, P [1 ]
Berger, RL [1 ]
Glendinning, SG [1 ]
Glenzer, SH [1 ]
Haan, SW [1 ]
Kauffman, RL [1 ]
Landen, OL [1 ]
Suter, LJ [1 ]
机构
[1] Lawrence Livermore Natl Lab, Livermore, CA 94551 USA
关键词
D O I
10.1063/1.1578638
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
The 1990 National Academy of Science final report of its review of the Inertial Confinement Fusion Program recommended completion of a series of target physics objectives on the 10-beam Nova laser at the Lawrence Livermore National Laboratory as the highest-priority prerequisite for proceeding with construction of an ignition-scale laser facility, now called the National Ignition Facility (NIF). These objectives were chosen to demonstrate that there was sufficient understanding of the physics of ignition targets that the laser requirements for laboratory ignition could be accurately specified. This research on Nova, as well as additional research on the Omega laser at the University of Rochester, is the subject of this review. The objectives of the U.S. indirect-drive target physics program have been to experimentally demonstrate and predictively model hohlraum characteristics, as well as capsule performance in targets that have been scaled in key physics variables from NIF targets. To address the hohlraum and hydrodynamic constraints on indirect-drive ignition, the target physics program was divided into the Hohlraum and Laser-Plasma Physics (HLP) program and the Hydrodynamically Equivalent Physics (HEP) program. The HLP program addresses laser-plasma coupling, x-ray generation and transport, and the development of energy-efficient hohlraums that provide the appropriate spectral, temporal, and spatial x-ray drive. The HEP experiments address the issues of hydrodynamic instability and mix, as well as the effects of flux asymmetry on capsules that are scaled as closely as possible to ignition capsules (hydrodynamic equivalence). The HEP program also addresses other capsule physics issues associated with ignition, such as energy gain and energy loss to the fuel during implosion in the absence of alpha-particle deposition. The results from the Nova and Omega experiments approach the NIF requirements for most of the important ignition capsule parameters, including drive temperature, drive symmetry, and hydrodynamic instability. This paper starts with a review of the NIF target designs that have formed the motivation for the goals of the target physics program. Following that are theoretical and experimental results from Nova and Omega relevant to the requirements of those targets. Some elements of this work were covered in a 1995 review of indirect-drive [J. D. Lindl, "Development of the indirect-drive approach to inertial confinement fusion and the target physics basis for ignition and gain," Phys. Plasmas 2, 3933 (1995)]. In order to present as complete a picture as possible of the research that has been carried out on indirect drive, key elements of that earlier review are also covered here, along with a review of work carried out since 1995. (C) 2004 American Institute of Physics.
引用
收藏
页码:339 / 491
页数:153
相关论文
共 50 条
  • [31] A new ignition hohlraum design for indirect-drive inertial confinement fusion
    Li, Xin
    Wu, Chang-Shu
    Dai, Zhen-Sheng
    Zheng, Wu-Di
    Gu, Jian-Fa
    Gu, Pei-Jun
    Zou, Shi-Yang
    Liu, Jie
    Zhu, Shao-Ping
    CHINESE PHYSICS B, 2016, 25 (08)
  • [32] A new ignition hohlraum design for indirect-drive inertial confinement fusion
    李欣
    吴畅书
    戴振生
    郑无敌
    谷建法
    古培俊
    邹士阳
    刘杰
    朱少平
    Chinese Physics B, 2016, 25 (08) : 260 - 264
  • [33] Robustness studies of ignition targets for the National Ignition Facility in two dimensions
    Clark, Daniel S.
    Haan, Steven W.
    Salmonson, Jay D.
    PHYSICS OF PLASMAS, 2008, 15 (05)
  • [34] Laser-Plasma Interactions in Drive Campaign targets on the National Ignition Facility
    Hinkel, D. E.
    Callahan, D. A.
    Moody, J. D.
    Amendt, P. A.
    Lasinski, B. F.
    MacGowan, B. J.
    Meeker, D.
    Michel, P. A.
    Ralph, J.
    Rosen, M. D.
    Ross, J. S.
    Schneider, M. B.
    Storm, E.
    Strozzi, D. J.
    Williams, E. A.
    8TH INTERNATIONAL CONFERENCE ON INERTIAL FUSION SCIENCES AND APPLICATIONS (IFSA 2013), 2016, 688
  • [35] Ignition on the National Ignition Facility
    Moses, E. I.
    5TH INTERNATIONAL CONFERENCE ON INERTIAL FUSION SCIENCES AND APPLICATIONS (IFSA2007), 2008, 112
  • [36] Three dimensional low-mode areal-density non-uniformities in indirect-drive implosions at the National Ignition Facility
    Casey, D. T.
    Landen, O. L.
    Hartouni, E.
    Bionta, R. M.
    Hahn, K. D.
    Volegov, P. L.
    Fittinghoff, D. N.
    Geppert-Kleinrath, V.
    Wilde, C. H.
    Milovich, J. L.
    Smalyuk, V. A.
    Field, J. E.
    Hurricane, O. A.
    Zylstra, A. B.
    Kritcher, A. L.
    Clark, D. S.
    Young, C. V.
    Nora, R. C.
    Callahan, D. A.
    MacGowan, B. J.
    Munro, D. H.
    Spears, B. K.
    Peterson, J. L.
    Gaffney, J. A.
    Humbird, K. D.
    Kruse, M. K. G.
    Moore, A. S.
    Schlossberg, D. J.
    Gatu-Johnson, M.
    Frenje, J. A.
    PHYSICS OF PLASMAS, 2021, 28 (04)
  • [37] Polar direct drive on the National Ignition Facility
    Skupsky, S
    Marozas, JA
    Craxton, RS
    Betti, R
    Collins, TJB
    Delettrez, JA
    Goncharov, VN
    McKenty, PW
    Radha, PB
    Boehly, TR
    Knauer, JP
    Marshall, FJ
    Harding, DR
    Kilkenny, JD
    Meyerhofer, DD
    Sangster, TC
    McCrory, RL
    PHYSICS OF PLASMAS, 2004, 11 (05) : 2763 - 2770
  • [38] Progress in hohlraum physics for the National Ignition Facility
    Moody, J. D.
    Callahan, D. A.
    Hinkel, D. E.
    Amendt, P. A.
    Baker, K. L.
    Bradley, D.
    Celliers, P. M.
    Dewald, E. L.
    Divol, L.
    Doeppner, T.
    Eder, D. C.
    Edwards, M. J.
    Jones, O.
    Haan, S. W.
    Ho, D.
    Hopkins, L. B.
    Izumi, N.
    Kalantar, D.
    Kauffman, R. L.
    Kilkenny, J. D.
    Landen, O.
    Lasinski, B.
    LePape, S.
    Ma, T.
    MacGowan, B. J.
    MacLaren, S. A.
    Mackinnon, A. J.
    Meeker, D.
    Meezan, N.
    Michel, P.
    Milovich, J. L.
    Munro, D.
    Pak, A. E.
    Rosen, M.
    Ralph, J.
    Robey, H. F.
    Ross, J. S.
    Schneider, M. B.
    Strozzi, D.
    Storm, E.
    Thomas, C.
    Town, R. P. J.
    Widmann, K. L.
    Kline, J.
    Kyrala, G.
    Nikroo, A.
    Boehly, T.
    Moore, A. S.
    Glenzer, S. H.
    PHYSICS OF PLASMAS, 2014, 21 (05)
  • [39] Laser design basis for the national ignition facility
    Hunt, J.T.
    Manes, K.R.
    Murray, J.R.
    Renard, P.A.
    Sawicki, R.
    Trenholme, J.B.
    Williams, W.
    Fusion Technology, 1994, 26 (3 pt 2): : 767 - 771
  • [40] Possible version of the compression degradation of the thermonuclear indirect-irradiation targets at the national ignition facility and a reason for the failure of ignition
    V. B. Rozanov
    G. A. Vergunova
    Journal of Experimental and Theoretical Physics, 2017, 124 : 182 - 191