Published May 24, 2004 | Version v1
Journal article

Design and Characterization of a Neutralized-Transport Experiment for Heavy-Ion Fusion

Description

In heavy-ion inertial-confinement fusion systems, intense beams of ions must be transported from the exit of the final focus magnet system through the fusion chamber to hit millimeter-sized spots on the target. Effective plasma neutralization of intense ion beams in this final transport is essential for a heavy-ion fusion power plant to be economically competitive. The physics of neutralized drift has been studied extensively with particle-in-cell simulations. To provide quantitative comparisons of theoretical predictions with experiment, the Virtual National Laboratory for Heavy Ion Fusion has completed the construction and has begun experimentation with the Neutralized Transport Experiment (NTX). The experiment consists of three main sections, each with its own physics issues. The injector is designed to generate a very high-brightness, space-charge-dominated potassium beam while still allowing variable perveance by a beam aperturing technique. The magnetic-focusing section, consisting of four pulsed magnetic quadrupoles, permits the study of beam tuning, as well as the effects of phase space dilution due to higher-order nonlinear fields. In the final section, a converging ion beam exiting the magnetic section is transported through a drift region with plasma sources for beam neutralization, and the final spot size is measured under various conditions of neutralization. In this paper, we discuss the design and characterization of the three sections in detail and present the first results from the experiment

Availability note (English)

Available from http://www.llnl.gov/tid/lof/documents/pdf/308112.pdf

Additional details

Publishing Information

Journal Title
Physical Review Special Topics. Accelerators and Beams
Journal Volume
7
Journal Issue
083501
Journal Page Range
p. 29
ISSN
1098-4402

INIS

Optional Information

Contract/Grant/Project number
W-7405-ENG-48
Notes
PDF-FILE: 27 ; SIZE: 0.3 MBYTES; Journal publication date August 9, 2004
Funding organization
US Department of Energy (United States)
Secondary number(s)
UCRL-JRNL--204346