Published August 1994 | Version v1
Journal article

Magnetohydrodynamic stability regimes for steady state and pulsed reactors

  • 1. Princeton University, Plasma Physics Laboratory, P.O. Box 451, Princeton, NJ 08543 (United States)

Description

A tokamak reactor will operate at the maximum value of β≡2μ0 left angle p right angle /B2 that is compatible with magnetohydrodynamic (MHD) stability. This value depends on the plasma current and pressure profiles, the plasma shape and aspect ratio, and the location of nearby conducting structures. In addition, a steady state reactor will minimize its external current drive requirements and thus achieve its maximum economic benefit with a bootstrap fraction near unity, IBS/IP∼1, which constrains the product of the inverse aspect ratio and the plasma poloidal β to be near unity, arepsilonβP∼1. An inductively driven pulsed reactor has different constraints set by the steady-state Ohm's law which relates the plasma temperature and density profiles to the parallel current density. We present the results obtained during ARIES I, II/IV, and III and PULSAR reactor studies where these quantities were optimized subject to different design philosophies. The ARIES-II/IV and ARIES-III designs are both in the second stability regime, but differ in requirements in the form of the profiles at the plasma edge, and in the location of the conducting wall. The relation between these, as well as new attractive MHD regimes not utilized in the ARIES or PULSAR studies, is also discussed. ((orig.))

Additional details

Publishing Information

Journal Title
Fusion Engineering and Design
Journal Volume
25
Journal Issue
1-3
Journal Page Range
p. 215-225.
ISSN
0920-3796
CODEN
FEDEEE

Conference

Title
International Atomic Energy Agency (IAEA) meeting on fusion reactor design and technology.
Dates
13-17 Sep 1993.
Place
Los Angeles, CA (United States).