Charged Particle Stopping Power Experiments on Orion

被引:0
|
作者
Coltman, Josie E. [1 ]
Garbett, Warren J. [1 ]
Horsfield, Colin J. [1 ]
Rubery, Mike S. [1 ]
Leatherland, Alex E. [1 ]
Gales, Steve G. [1 ]
Meadowcroft, Anthony E. [1 ]
Simons, Andrew [1 ]
Woolhead, Verity [1 ]
Rice, Simon [1 ]
机构
[1] AWE, Plasma Phys Technol Ctr, Aldermaston RG7 4PR, England
来源
WOMEN IN PHYSICS | 2019年 / 2109卷
关键词
D O I
10.1063/1.5110140
中图分类号
O59 [应用物理学];
学科分类号
摘要
The Orion laser facility provides a platform for performing direct drive capsule implosions. The predicted level of capsule performance for this type of experiment is uncertain, largely due to the reduced number of laser beams (10), compared to facilities such as OMEGA (60), which limits the drive symmetry. To this end, following a one-dimensional (1D) design study of capsule phase space, experiments have been performed to evaluate the performance of deuterium (DD)filled targets. A thin shell "exploding pusher" (EP) design is desirable both for robustness and for future charged-particle stopping power experiments to validate current stopping power theories, important in high-energy-density physics (HEDP). Stopping power experiments require a well-known source of particles (a proton source, the EP target), a well-characterized plasma (secondary target), and an accurate measurement of the energy loss (downshift in energy of the particle traversing the plasma). DD implosions generate 3MeV protons, which will then interact with the secondary target heated isochorically by a short pulse laser to similar to 200-300 eV at solid density (eta(e) similar to 2 x 10(23) g/cc). The optimum EP capsule selected from the study, taking into account facility and target fabrication constraints, satisfies design criteria on the 1D clean fusion yield, capsule dynamics, and implosion time. The nominal target was a silica glass shell of radius 250 +/- 10 mu m and thickness 2.3 +/- 0.5 mu m, filled with 10 atm of DD gas. The preliminary secondary target was a plastic cuboid of similar to 70 x 70 x 50 mu m dimensions. The work presented here focuses on the design of an optimum EP capsule and includes experimental results for comparison.
引用
收藏
页数:5
相关论文
共 50 条
  • [41] CHARGED-PARTICLE DETECTION EXPERIMENTS IN TRAAC SATELLITE
    BOSTROM, CO
    WILLIAMS, DJ
    PIEPER, GF
    JOURNAL OF GEOPHYSICAL RESEARCH, 1962, 67 (09): : 3543 - &
  • [42] ALPHA-PARTICLE STOPPING POWER FOR TITANIUM AND VANADIUM
    HAIGHT, RC
    VONACH, HK
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 1984, 229 (01): : 9 - 12
  • [43] Change of α-particle stopping power in Ni at the Curie temperature
    Pawlowski, B
    Moneta, M
    ACTA PHYSICA POLONICA A, 2003, 103 (05) : 433 - 440
  • [44] NOTE ON STOPPING POWER AND STATISTICS OF PARTICLE PENETRATION - REPLY
    TRICKEY, SB
    SABIN, JR
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 1995, 95 (04): : 480 - 480
  • [45] A nonlinear theory of charged-particle stopping in non-ideal plasmas
    Sayasov, YS
    JOURNAL OF PLASMA PHYSICS, 1997, 57 : 373 - 385
  • [46] CONTRIBUTION TO THE THEORIES OF THE STOPPING POWER OF SOLIDS FOR RELATIVISTIC CHARGED-PARTICLES
    PEREZ, JP
    JOURNAL DE PHYSIQUE, 1983, 44 (06): : 699 - 705
  • [47] NEW EMPIRICAL RELATIONS FOR STOPPING POWER AND RANGE OF CHARGED-PARTICLES
    CHAUBEY, AK
    GUPTA, HV
    REVUE DE PHYSIQUE APPLIQUEE, 1977, 12 (02): : 321 - 329
  • [48] CONTRIBUTION OF SURFACE LOSSES TO STOPPING POWER OF MATTER FOR CHARGED-PARTICLES
    ASHLEY, JC
    RITCHIE, RH
    PHYSICAL REVIEW B, 1972, 5 (09): : 3485 - &
  • [49] Stopping power for particle therapy: The generic library libdEdx and clinically relevant stopping-power ratios for light ions
    Luhr, Armin
    Toftegaard, Jakob
    Kantemiris, Ioannis
    Hansen, David C.
    Bassler, Niels
    INTERNATIONAL JOURNAL OF RADIATION BIOLOGY, 2012, 88 (1-2) : 209 - 212
  • [50] Multilayer Semiconductor Charged-Particle Spectrometers for Accelerator Experiments
    Yu. B. Gurov
    S. V. Lapushkin
    V. G. Sandukovsky
    B. A. Chernyshev
    Physics of Particles and Nuclei, 2018, 49 : 249 - 307