Simulation of instability growth rates on the front and back of laser accelerated planar targets

被引:6
|
作者
Bel'kov, SA [1 ]
Mkhitarian, LS
Vinokurov, OA
Kochemasov, GG
Bondarenko, SV
Wilson, DC
Hoffman, NM
机构
[1] Russian Fed Nucl Ctr, Inst Phys Expt, Sarov 607190, Nizhny Novgorod, Russia
[2] Los Alamos Natl Lab, Los Alamos, NM 87545 USA
关键词
D O I
10.1063/1.873023
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 ability of an inertial confinement fusion target to achieve ignition and burn depends critically upon controlling the,growth of hydrodynamic perturbations originating on the outer ablator surface and the inner deuterium-tritium (DT) ice. The MIMOZA-ND code [Sofronov et al., Voprosy Atomnoy Nauki i Tehniki 2, 3 (1990)] was used to model perturbation growth On both sides of carbon foils irradiated by 0.35 mu m Light at 10(15) W/cm(2). When an initial perturbation was applied to a laser irradiated surface, the computational instability growth rates agreed well with the existing theoretical estimates. Perturbations applied to the rear side of the target for wavelengths that are large compared to the thickness (d/Lambda much less than 1) behave similarly to the perturbations at the ablation front. For d/Lambda greater than or equal to 1, the shorter the wave length is, the faster the decrease of the growth rate of the amplitudes at the interface (and the mass flows) as compared to the perturbations at the ablation front. This is due to the Richtmyer-Meshkov instability-induced transverse velocity component. The time of Rayleigh-Taylor instability transition to the nonlinear phase depends on the initial amplitude and is well modeled by an infinitely thin shell approximation. The transverse velocity generated by the Richtmyer-Meshkov instability causes the interaction of Lambda = 10 mu m and Lambda = 2 mu m wavelength modes to differ qualitatively when the perturbations are applied to the ablation front or to the rear side of target. (C) 1998 American Institute of Physics.
引用
收藏
页码:2988 / 2996
页数:9
相关论文
共 35 条
  • [1] Self-consistent determination of Rayleigh-Taylor growth rates and ablation-front density in planar targets accelerated by laser light
    Smalyuk, VA
    Goncharov, VN
    Boehly, TR
    Knauer, JP
    Meyerhofer, DD
    Sangster, TC
    PHYSICS OF PLASMAS, 2004, 11 (11) : 5038 - 5040
  • [2] RAYLEIGH-TAYLOR INSTABILITY GROWTH-RATES IN TARGETS ACCELERATED WITH A LASER-BEAM SMOOTHED BY INDUCED SPATIAL INCOHERENCE
    GRUN, J
    EMERY, ME
    MANKA, CK
    LEE, TN
    MCLEAN, EA
    MOSTOVYCH, A
    STAMPER, J
    BODNER, S
    OBENSCHAIN, SP
    RIPIN, BH
    PHYSICAL REVIEW LETTERS, 1987, 58 (25) : 2672 - 2675
  • [3] NONLINEAR RAYLEIGH-TAYLOR INSTABILITY IN (SPHERICAL) LASER ACCELERATED TARGETS
    HENSHAW, MJD
    PERT, GJ
    YOUNGS, DL
    PLASMA PHYSICS AND CONTROLLED FUSION, 1987, 29 (03) : 405 - 418
  • [4] SUPPRESSION OF THE RAYLEIGH-TAYLOR INSTABILITY BY CONVECTION IN ABLATIVELY ACCELERATED LASER TARGETS
    BUDKO, AB
    LIBERMAN, MA
    PHYSICAL REVIEW LETTERS, 1992, 68 (02) : 178 - 181
  • [5] Perturbation evolution started by Richtmyer-Meshkov instability in planar laser targets
    Aglitskiy, Y.
    Metzler, N.
    Karasik, M.
    Serlin, V.
    Velikovich, A. L.
    Obenschain, S. P.
    Mostovych, A. N.
    Schmitt, A. J.
    Weaver, J.
    Gardner, J. H.
    Walsh, T.
    PHYSICS OF PLASMAS, 2006, 13 (08)
  • [6] NONLOCAL ANALYSIS OF THE COLLISIONAL WEIBEL INSTABILITY IN PLANAR LASER-ABLATED TARGETS
    EPPERLEIN, EM
    BELL, AR
    PLASMA PHYSICS AND CONTROLLED FUSION, 1987, 29 (01) : 85 - 92
  • [7] Saturation of perturbation growth in ablatively driven planar laser targets
    Velikovich, AL
    Dahlburg, JP
    Gardner, JH
    Taylor, RJ
    PHYSICS OF PLASMAS, 1998, 5 (05) : 1491 - 1505
  • [8] Nonlinear spectrum of the ablative Rayleigh-Taylor instability in laser-accelerated planar plasmas
    Keskinen, M. J.
    Schmitt, A.
    PHYSICS OF PLASMAS, 2007, 14 (01)
  • [9] SIMPLE MEASUREMENT OF THE VELOCITY OF PLANAR LASER ACCELERATED TARGETS WITH STEPPED DOUBLE-FOIL TECHNIQUE
    FABBRO, R
    FARAL, B
    COTTET, F
    ROMAIN, JP
    OPTICS COMMUNICATIONS, 1984, 49 (05) : 352 - 354
  • [10] Measurement of a dispersion curve for linear-regime Rayleigh-Taylor growth rates in laser-driven planar targets
    Glendinning, SG
    Dixit, SN
    Hammel, BA
    Kalantar, DH
    Key, MH
    Kilkenny, JD
    Knauer, JP
    Pennington, DM
    Remington, BA
    Wallace, RJ
    Weber, SV
    PHYSICAL REVIEW LETTERS, 1997, 78 (17) : 3318 - 3321