The velocity campaign for ignition on NIFa)

Achieving inertial confinement fusion ignition requires a symmetric, high velocity implosion. Experiments show that we can reach 95 ± 5% of the required velocity by using a 420 TW, 1.6 MJ laser pulse. In addition, experiments with a depleted uranium hohlraum show an increase in capsule performance which suggests an additional 18 ± 5 μm/ns of velocity with uranium hohlraums over gold hohlraums. Combining these two would give 99 ± 5% of the ignition velocity. Experiments show that we have the ability to tune symmetry using crossbeam transfer. We can control the second Legendre mode (P2) by changing the wavelength separation between the inner and outer cones of laser beams. We can control the azimuthal m = 4 asymmetry by changing the wavelength separation between the 23.5 and 30 degree beams on NIF. This paper describes our “first pass” tuning the implosion velocity and shape on the National Ignition Facility laser [Moses et al., Phys. Plasmas, 16, 041006 (2009)].

[1]  J D Lindl,et al.  Tuning the implosion symmetry of ICF targets via controlled crossed-beam energy transfer. , 2009, Physical review letters.

[2]  O. Landen,et al.  The physics basis for ignition using indirect-drive targets on the National Ignition Facility , 2004 .

[3]  Gilbert W. Collins,et al.  Convergent ablator performance measurements , 2010 .

[4]  M. Rosen,et al.  Proof of Principle experiments that demonstrate utility of cocktail hohlraums for indirect drive ignition , 2007 .

[5]  Steven W. Haan,et al.  Three-dimensional HYDRA simulations of National Ignition Facility targets , 2001 .

[6]  Jochen Schein,et al.  X-ray conversion efficiency of high-Z hohlraum wall materials for indirect drive ignition , 2008 .

[7]  Abbas Nikroo,et al.  Developing depleted uranium and gold cocktail hohlraums for the National Ignition Facility , 2007 .

[8]  J. Lindl Development of the indirect‐drive approach to inertial confinement fusion and the target physics basis for ignition and gain , 1995 .

[9]  M. J. Pivovaroff,et al.  Images of the laser entrance hole from the static x-ray imager at NIF. , 2010, The Review of scientific instruments.

[10]  M D Rosen,et al.  Measurement of the absolute hohlraum-wall albedo under ignition foot drive conditions. , 2004, Physical review letters.

[11]  Marilyn Schneider,et al.  Analysis of the National Ignition Facility ignition hohlraum energetics experiments a) , 2011 .

[12]  Porter,et al.  The Rosseland Mean Opacity of a Mixture of Gold and Gadolinium at High Temperatures. , 1996, Physical review letters.

[13]  J. Meyer-ter-Vehn,et al.  The physics of inertial fusion - Hydrodynamics, dense plasma physics, beam-plasma interaction , 2004 .

[14]  D. Colombant,et al.  Increase in Rosseland mean opacity for inertial fusion hohlraum walls , 1998 .

[15]  Robert L. Kauffman,et al.  Dante soft x-ray power diagnostic for National Ignition Facility , 2004 .

[16]  Neal R. Pederson,et al.  Gated x-ray detector for the National Ignition Facility , 2006 .

[17]  Max Tabak,et al.  Progress in target physics and design for heavy ion fusion , 1999 .

[18]  David K. Bradley,et al.  Line-imaging velocimeter for shock diagnostics at the OMEGA laser facility , 2004 .

[19]  M. J. Edwards,et al.  Symmetric Inertial Confinement Fusion Implosions at Ultra-High Laser Energies , 2009, Science.

[20]  D. K. Bradley,et al.  Symmetry tuning via controlled crossed-beam energy transfer on the National Ignition Facilitya) , 2009 .

[21]  C. Sorce,et al.  Experimental demonstration of early time, hohlraum radiation symmetry tuning for indirect drive ignition experiments , 2011 .

[22]  John R. Celeste,et al.  A diamond detector for X-ray bang-time measurement at the National Ignition Facility , 2011 .

[23]  Jochen Schein,et al.  Demonstration of Enhanced Radiation Drive in Hohlraums Made from a Mixture of High-Z Wall Materials , 2007 .

[24]  Joshua E. Rothenberg,et al.  Exploring the limits of the National Ignition Facility’s capsule coupling , 2000 .

[25]  P. Michel,et al.  The role of a detailed configuration accounting (DCA) atomic physics package in explaining the energy balance in ignition-scale hohlraums , 2011 .

[26]  J D Lindl,et al.  Three-wavelength scheme to optimize hohlraum coupling on the National Ignition Facility. , 2010, Physical review. E, Statistical, nonlinear, and soft matter physics.

[27]  Edward I. Moses,et al.  The National Ignition Facility: Ushering in a new age for high energy density science , 2009 .

[28]  L. J. Atherton,et al.  Point design targets, specifications, and requirements for the 2010 ignition campaign on the National Ignition Facility , 2010 .