Title :
Progress on the momentum-rich ion beam concept for ICF
Author :
Wilson, D.C. ; Maschke, A.W.
Author_Institution :
Appl. Theor. Phys. Div., Los Alamos Nat. Lab., Los Alamos, NM, USA
Abstract :
In the momentum rich beam (MRB) approach to inertial confinement fusion, ions from a low emittance source are electrostatically accelerated to 30-1000 keV, neutralized, and then propagate first collisionlessly then, at a few cm radius, collisionally to target. Encouraging experimental and theoretical results have changed the MRB approach to inertial fusion since the last report1). Measurements on a cesium ion source show extremely low divergence beams with transverse beam temperature of only 0.leV, the source thermal temperature. Neutralization adds very little divergence to beam. Using collimated argon and xenon plasma sources accelerated to 50ke V, we found the rms resonant scattering angle proportional to √I/mi. The scattering angle is halved by neutralizing an argon beam with cesium, rather than argon gas. During the collisionless collapse a precursor is formed which can implode the target more adiabatically. Calculations of the collisional collapse show 3/4 or more of the beam thermal energy will be radiated away. Since this energy arose from the compression of initial transverse velocities, higher emittance ion sources can be used. Targets containing DT calculate to ignite and achieve moderate gain (20) with beam energies below lMJ. DD targets also calculate to burn at similar beam energies, avoiding the need for tritium breeding in a reactor.
Keywords :
fusion reactor fuel; ion sources; plasma inertial confinement; plasma sources; plasma temperature; plasma transport processes; plasma-beam interactions; tritium handling; ´rms resonant scattering angle; DT calculation; argon gas; beam energies; beam thermal energy radiation; cesium; cesium ion source; collimated argon beam; collisional collapse; collisionless ion propagation; divergence beams; electrostatically accelerated ions; emittance ion sources; inertial confinement fusion; initial transverse velocities; low emittance ion source; momentum rich ion beam approach; neutralized ions; reactor tritium breeding; source thermal temperature; target.collisionality; transverse beam temperature; xenon plasma sources; Acceleration; Argon; Laser beams; Particle beams; Plasma temperature; Temperature measurement; Xenon;
Conference_Titel :
High-Power Particle Beams, 1990 8th International Conference on
Conference_Location :
Novosibirsk
Print_ISBN :
9.7898102055e+012