Macron Formed Liner as a Practical Method for Enabling Magneto-Inertial Fusion

被引:2
|
作者
Kirtley, David [1 ]
Slough, John [1 ]
机构
[1] MSNW LLC, Redmond, WA 98052 USA
关键词
Magneto-inertial fusion; Magnetic liner compression; FRC; COMPRESSION;
D O I
10.1007/s10894-010-9314-y
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
To take advantage of the smaller scale, higher density regime of MIF an efficient and repeatable method for achieving the compressional heating required to reach fusion gain conditions is needed. The macro-particle (macron) formed liner compression of the field reversed configuration (FRC) provides such a method. The approach to be described employs an assemblage of small, gram scale, macrons to form a more massive liner that both radially and axially compresses and heats the FRC plasmoid to fusion conditions. The large liner energy (several MJ) required to compress the FRC is carried in the kinetic energy of the full array of macrons. The much smaller energy required for each individual macron is obtained by accelerating the macron to similar to 3 km/s which can be accomplished remotely using conventional inductive techniques. 3D numerical calculations demonstrate that macron convergence can form a coherent liner provided minimum velocity and timing accuracy is met. Experimental results have demonstrated that a cylindrical or spherical macron can be accelerated to velocity within 2 m/s and timing less than 1 microsecond. Initial testing of a 6-stage launcher yielded 280 m/s at a final coupling efficiency of greater than 40%.
引用
收藏
页码:561 / 566
页数:6
相关论文
共 50 条
  • [1] Macron Formed Liner as a Practical Method for Enabling Magneto-Inertial Fusion
    David Kirtley
    John Slough
    Journal of Fusion Energy, 2010, 29 : 561 - 566
  • [2] Magneto-Inertial Fusion
    G. A. Wurden
    S. C. Hsu
    T. P. Intrator
    T. C. Grabowski
    J. H. Degnan
    M. Domonkos
    P. J. Turchi
    E. M. Campbell
    D. B. Sinars
    M. C. Herrmann
    R. Betti
    B. S. Bauer
    I. R. Lindemuth
    R. E. Siemon
    R. L. Miller
    M. Laberge
    M. Delage
    Journal of Fusion Energy, 2016, 35 : 69 - 77
  • [3] Magneto-Inertial Fusion
    Wurden, G. A.
    Hsu, S. C.
    Intrator, T. P.
    Grabowski, T. C.
    Degnan, J. H.
    Domonkos, M.
    Turchi, P. J.
    Campbell, E. M.
    Sinars, D. B.
    Herrmann, M. C.
    Betti, R.
    Bauer, B. S.
    Lindemuth, I. R.
    Siemon, R. E.
    Miller, R. L.
    Laberge, M.
    Delage, M.
    JOURNAL OF FUSION ENERGY, 2016, 35 (01) : 69 - 77
  • [4] Formation of a spherical plasma liner for plasma-jet-driven magneto-inertial fusion
    Lajoie, A. L.
    Chu, F.
    Brown, A. E.
    Langendorf, S. J.
    Dunn, J. P.
    Wurden, G. A.
    Witherspoon, F. D.
    Case, A.
    Luna, M.
    Cassibry, J.
    Vyas, A.
    Gilmore, M.
    PHYSICS OF PLASMAS, 2024, 31 (10)
  • [5] Possible energy gain for a plasma-liner-driven magneto-inertial fusion concept
    Knapp, C. E.
    Kirkpatrick, R. C.
    PHYSICS OF PLASMAS, 2014, 21 (07)
  • [6] BENCHMARIUNG SIMULATIONS OF PLASMA LINER-DRIVEN MAGNETO-INERTIAL FUSION WITH ADVANCED EQUATION OF STATE
    Stoltz, Peter H.
    Kundrapu, Madhusudan
    Beckwith, Kristian R. C.
    Langendorf, Samuel
    Hsu, Scott C.
    2016 43RD IEEE INTERNATIONAL CONFERENCE ON PLASMA SCIENCE (ICOPS), 2016,
  • [7] Status of the US program in magneto-inertial fusion
    Thio, Y. C. Francis
    5TH INTERNATIONAL CONFERENCE ON INERTIAL FUSION SCIENCES AND APPLICATIONS (IFSA2007), 2008, 112
  • [8] Benefits of Spin Polarization for Inertial and Magneto-Inertial Fusion Propulsion
    Bruhaug, Gerrit
    Kish, Ayden
    JOURNAL OF PROPULSION AND POWER, 2024, 40 (01) : 164 - 168
  • [9] Compression of magnetized target in the magneto-inertial fusion
    Kuzenov, V. V.
    III INTERNATIONAL CONFERENCE ON LASER AND PLASMA RESEARCHES AND TECHNOLOGIES, 2018, 941
  • [10] A semi-analytic model of gas-puff liner-on-target magneto-inertial fusion
    Narkis, J.
    Rahman, H. U.
    Valenzuela, J. C.
    Conti, F.
    McBride, R. D.
    Venosa, D.
    Beg, F. N.
    PHYSICS OF PLASMAS, 2019, 26 (03)