Physical Review Letters · 2007 · 523 citations · 17 references
Materials ScienceEngineeringEqual Driver EnergyDirect Laser LightFuel ScienceInertial Confinement FusionShock IgnitionAssembled FuelCombustion EngineeringThermodynamicsChemical KineticsHigh-power LasersInertial Fusion EnergyIgnition
A novel method by C. Zhou and R. Betti [Bull. Am. Phys. Soc. 50, 140 (2005)] to assemble and ignite thermonuclear fuel is presented. Massive cryogenic shells are first imploded by direct laser light with a low implosion velocity and on a low adiabat leading to fuel assemblies with large areal densities. The assembled fuel is ignited from a central hot spot heated by the collision of a spherically convergent ignitor shock and the return shock. The resulting fuel assembly features a hot-spot pressure greater than the surrounding dense fuel pressure. Such a nonisobaric assembly requires a lower energy threshold for ignition than the conventional isobaric one. The ignitor shock can be launched by a spike in the laser power or by particle beams. The thermonuclear gain can be significantly larger than in conventional isobaric ignition for equal driver energy.
17
Ignition and high gain with ultrapowerful lasers*
M. Tabak, J. H. Hammer, Michael E. Glinsky et al. · Physics of Plasmas · 1994 · 3K citations
Optical Materials, Engineering, Conventional Fusion Lasers +19
Laser Compression of Matter to Super-High Densities: Thermonuclear (CTR) Applications
J. Nuckolls, Lowell Wood, A.R. Thiessen et al. · Nature · 1972 · 1.9K citations
Design and modeling of ignition targets for the National Ignition Facility
S. W. Haan, S. M. Pollaine, J. D. Lindl et al. · Physics of Plasmas · 1995 · 351 citations