arrow
Return

Density limit experiments on FTU

delete2013-07-03
delete25
PRE
AI
G
G. Pucella *
O
O. Tudisco
M
M.L. Apicella
G
G. Apruzzese
G
G. Artaserse
F
F. Belli
W
W. Bin
L
L. Boncagni
A
A. Botrugno
P
P. Buratti
G
G. Calabrò
C
C. Castaldo
C
C. Cianfarani
C
Cocilovo, V.
L
L. Dimatteo
B
B. Esposito
D
D. Frigione
L
L. Gabellieri
E
E. Giovannozzi
G
G. Granucci
M
M. Marinucci
D
D. Marocco
E
E. Martines
G
G. Mazzitelli
C
C. Mazzotta
S
S. Nowak
G
G. Ramogida
A
A. Romano
A
A.A. Tuccillo
龙增 cover
龙增 (Long Zeng)
M
M. Zuin
DOI:10.1088/0029-5515/53/8/083002delete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
One of the main problems in tokamak fusion devices concerns the capability to operate at a high plasma density, which is observed to be limited by the appearance of catastrophic events causing loss of plasma confinement. The commonly used empirical scaling law for the density limit is the Greenwald limit, predicting that the maximum achievable line-averaged density along a central chord depends only on the average plasma current density. However, the Greenwald density limit has been exceeded in tokamak experiments in the case of peaked density profiles, indicating that the edge density is the real parameter responsible for the density limit. Recently, it has been shown on the Frascati Tokamak Upgrade (FTU) that the Greenwald density limit is exceeded in gas-fuelled discharges with a high value of the edge safety factor. In order to understand this behaviour, dedicated density limit experiments were performed on FTU, in which the high density domain was explored in a wide range of values of plasma current (I-p = 500-900 kA) and toroidal magnetic field (B-T = 4-8 T). These experiments confirm the edge nature of the density limit, as a Greenwald-like scaling holds for the maximum achievable line-averaged density along a peripheral chord passing at r/a similar or equal to 4/5. On the other hand, the maximum achievable line-averaged density along a central chord does not depend on the average plasma current density and essentially depends on the toroidal magnetic field only. This behaviour is explained in terms of density profile peaking in the high density domain, with a peaking factor at the disruption depending on the edge safety factor. The possibility that the MARFE (multifaced asymmetric radiation from the edge) phenomenon is the cause of the peaking has been considered, with the MARFE believed to form a channel for the penetration of the neutral particles into deeper layers of the plasma. Finally, the magnetohydrodynamic (MHD) analysis has shown that also the central line-averaged density at the onset of the MHD activity depends only on the toroidal magnetic field.
Keywords:
FRASCATI TOKAMAK UPGRADE
DIII-D
PLASMA
CONFINEMENT
DISCHARGES
TEXTOR-94
ENERGY
MARFE
AI Summary

AI Summary

Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

Nuclear Fusion cover
Nuclear Fusion
IF:
4
Papers:
9.3K
Citations:
2.2W

Organization

E
euratom
Scholars:
2.3K
Papers: 798
Citations: 0
C
consiglio nazionale delle ricerche (cnr)
Scholars:
6.2W
Papers: 5.7W
Citations: 48
researcher View more organizations