High density internal transport barriers for burning plasma operation
- 1. Associazione EURATOM-ENEA sulla Fusione, CR Frascati, Rome (Italy)
Description
A tokamak plasma with internal transport barriers (ITBs) is the best candidate for a steady ITER operation, since the high energy confinement allows working at plasma currents (Ip) lower than the reference scenario. To build and sustain an ITB at the ITER high density (≥1020 m-3) and largely dominant electron (e-) heating is not trivial in most existing tokamaks. FTU can instead meet both requests, thanks to its radiofrequency heating systems, lower hybrid (LH, up to 1.9 MW) and electron cyclotron (EC up to 1.2 MW). By the combined use of them, ITBs are obtained up to peak densities ne0 > 1.3 x 1020 m-3, with central e- temperatures Te0 ∼ 5.5 keV, and are sustained for as long as the heating pulse is applied (>35 confinement times, τE). At ne0 ∼ 0.8 x 1020 m-3 Te0 can be larger than 11 keV. Almost full current drive (CD) and an overall good steadiness is attained within about one τE, 20 times faster than the ohmic current relaxation time. The ITB extends over a central region with an almost flat or slightly reversed q profile and qmin ∼ 1.3 that is fully sustained by off-axis lower hybrid current drive. Consequent to this is the beneficial good alignment of the bootstrap current, generated by the ITB large pressure gradients, with the LH driven current. Reflectometry shows a clear change in the turbulence close to the ITB radius, consistent with the reduced e- transport. Ions (i+) are significantly heated via collisions, but thermal equilibrium with electrons cannot be attained since the e--i+ equipartition time is always 4-5 times longer than τE. No degradation of the overall ion transport, rather a reduction of the i+ heat diffusivity, is observed inside the ITB. The global confinement has been improved up to 1.6 times over the scaling predictions. The ITB radius can be controlled by adjusting the LH power deposition profile that is affected mostly by the q value of the discharge, while the ITB strength can be varied through central EC heating. FTU experiments have shown that ITER-like e-ITBs are achievable
Availability note (English)
Available online at http://stacks.iop.org/0741-3335/47/B285/ppcf5_12B_S21.pdf or at the Web site for the journal Plasma Physics and Controlled Fusion (ISSN 1361-6587) http://www.iop.org/Additional details
Identifiers
- URL
- http://stacks.iop.org/0741-3335/47/B285/ppcf5_12B_S21.pdf;
- DOI
- 10.1088/0741-3335/47/12B/S21;
- PII
- S0741-3335(05)09284-5;
Publishing Information
- Journal Title
- Plasma Physics and Controlled Fusion
- Journal Volume
- 47
- Journal Issue
- 12B
- Journal Page Range
- p. B285-B301
- ISSN
- 0741-3335
- CODEN
- PPCFET
Conference
- Title
- 32. European Physical Society conference on plasma physics
- Dates
- 27 Jun - 1 Jul 2005
- Place
- Tarragona (Spain)
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 37061617
- Subject category
- S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
- Resource subtype / Literary indicator
- Conference
- Descriptors DEI
- BOOTSTRAP CURRENT; CHARGED-PARTICLE TRANSPORT; ELECTRONS; ITER TOKAMAK; KEV RANGE; LOWER HYBRID CURRENT DRIVE; LOWER HYBRID HEATING; PLASMA; PLASMA CONFINEMENT; PLASMA DENSITY; PRESSURE GRADIENTS; PULSES; Q-VALUE; RELAXATION TIME; RF SYSTEMS; THERMAL BARRIERS; THERMAL EQUILIBRIUM; TURBULENCE
- Descriptors DEC
- CLOSED PLASMA DEVICES; CONFINEMENT; CURRENTS; ELECTRIC CURRENTS; ELEMENTARY PARTICLES; ENERGY; ENERGY RANGE; EQUILIBRIUM; FERMIONS; HEATING; HIGH-FREQUENCY HEATING; LEPTONS; NON-INDUCTIVE CURRENT DRIVE; PLASMA HEATING; RADIATION TRANSPORT; THERMONUCLEAR DEVICES; THERMONUCLEAR REACTORS; TOKAMAK DEVICES; TOKAMAK TYPE REACTORS