Published June 2012 | Version v1
Journal article

Lower hybrid current drive at high density in the multi-pass regime

  • 1. MIT Plasma Science and Fusion Center, Cambridge, Massachusetts 02139 (United States)
  • 2. CompX, Del Mar, California 92014 (United States)
  • 3. M.V. Lomonosov Moscow State University, Moscow (Russian Federation)

Description

Assessing the performance of lower hybrid current drive (LHCD) at high density is critical for developing non-inductive current drive systems on future steady-state experiments. Excellent LHCD efficiency has been observed during fully non-inductive operation (η=2.0−2.5×1019 AW–1m–2 at ne=0.5×1020 m–3) on Alcator C-Mod [I. H. Hutchinson et al., Phys. Plasmas 1, 1511 (1994)] under conditions (ne, magnetic field and topology, and LHCD frequency) relevant to ITER [S. Shiraiwa et al., Nucl. Fusion 51, 103024 (2011)]. To extend these results to advanced tokamak regimes with higher bootstrap current fractions on C-Mod, it is necessary to increase ne to 1.0−1.5×1020 m−3. However, the number of current-carrying, non-thermal electrons generated by LHCD drops sharply in diverted configurations at densities that are well below the density limit previously observed on limited tokamaks. In these cases, changes in scrape off layer (SOL) ionization and density profiles are observed during LHCD, indicating that significant power is transferred from the LH waves to the SOL. Fokker-Planck simulations of these discharges utilizing ray tracing and full wave propagation codes indicate that LH waves in the high density, multi-pass absorption regime linger in the plasma edge, and SOL region, where absorption near or outside the LCFS results in the loss of current drive efficiency. Modeling predicts that non-thermal emission increases with stronger single-pass absorption. Experimental data show that increasing Te in high density LH discharges results in higher non-thermal electron emission, as predicted by the models.

Additional details

Identifiers

Publishing Information

Journal Title
Physics of Plasmas
Journal Volume
19
Journal Issue
6
Journal Page Range
p. 062505-062505.8
ISSN
1070-664X
CODEN
PHPAEN

Optional Information

Notes
(c) 2012 American Institute of Physics