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Improved performance of direct-drive inertial confinement fusion target designs with adiabat shaping using an intensity picket
157
Citations
34
References
2003
Year
EngineeringMechanical EngineeringLaser-plasma InteractionLaser ApplicationsLaser AblationLaser Plasma PhysicIntensity PicketMagnetic Confinement FusionHigh-power LasersControlled Nuclear FusionPlasma ConfinementPulse PowerPhysicsPropulsionLaser ImprintShell CompressibilityInertial Fusion EnergyHydrodynamic InstabilitiesApplied PhysicsInertial Confinement FusionFusion System Design
Hydrodynamic instabilities seeded by laser imprint and surface roughness limit the compression ratio and neutron yield in the direct-drive inertial confinement fusion target designs. New improved-performance designs use adiabat shaping to increase the entropy of only the outer portion of the shell, reducing the instability growth. The inner portion of the shell is kept on a lower entropy to maximize shell compressibility. The adiabat shaping is implemented using a high-intensity picket in front of the main-drive pulse. The picket launches a strong shock that decays as it propagates through the shell. This increases the ablation velocity and reduces the Rayleigh–Taylor growth rates. In addition, as shown earlier [T.J.B. Collins and S. Skupsky, Phys. Plasmas 9, 275 (2002)], the picket reduces the instability seed due to the laser imprint. To test the results of calculations, a series of the picket pulse implosions of CH capsules were performed on the OMEGA laser system [T.R. Boehly, D.L. Brown, R.S. Craxton et al., Opt. Commun. 133, 495 (1997)]. The experiments demonstrated a significant improvement in target yields for the pulses with the picket compared to the pulses without the picket. Results of the theory and experiments with adiabat shaping are being extended to future OMEGA and the National Ignition Facility’s [J.A. Paisner, J.D. Boyes, S.A. Kumpan, W.H. Lowdermilk, and M.S. Sorem, Laser Focus World 30, 75 (1994)] cryogenic target designs.
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