SELF-PINCHED TRANSPORT FOR ION-DRIVEN INERTIAL CONFINEMENT FUSION

Authors
Citation
Dr. Welch et Cl. Olson, SELF-PINCHED TRANSPORT FOR ION-DRIVEN INERTIAL CONFINEMENT FUSION, Fusion engineering and design, 32-3, 1996, pp. 477-483
Citations number
6
Categorie Soggetti
Nuclear Sciences & Tecnology
ISSN journal
09203796
Volume
32-3
Year of publication
1996
Pages
477 - 483
Database
ISI
SICI code
0920-3796(1996)32-3:<477:STFIIC>2.0.ZU;2-0
Abstract
Efficient transport of intense ion beams is necessary for ion-driven i nertial confinement fusion (ICF). The self-pinched transport scheme in volves the focusing of an ion beam to a radius of about 1 cm or less. At this radius, using the beam's self-magnetic field for confinement, the ion beam propagates through the reactor chamber to an ICF target. A promising regime for self-pinched transport involves the injection o f a high current beam into an initally neutral gas at about 200 mTorr less. A simple equilibrium theory of a beam with a temporally pinching radial envelope predicts that large confining magnetic fields are pos sible with net currents of more than 50% of the beam current. The magn itude of these fields is strongly dependent on the rate of ionization of the given ion species. We have simulated ion-beam propagation, usin g the hybrid code IPROP, which self-consistently calculates the gas br eakdown and electromagnetic fields. In agreement with the theory, a pr opagation window of 20-200 mTorr of argon is calculated for a 50 kA, 5 MeV proton beam similar to the parameters of the SABRE accelerator at Sandia National Laboratories. We present simulations of the focusing and propagation of the SABRE beam, with the purpose of designing a sel f-pinch experiment.