DIFFER
DIFFER Publication

L to H mode transition: on the role of Z(eff)

Author
Abstract

In this paper, the nature of the primary instability present in the pedestal forming region prior to the transition into H mode is analysed using a gyrokinetic code on JET-ILWprofiles. The linear analysis shows that the primary instability is of resistive nature, and can therefore be stabilized by increased temperature, hence power. The unstable modes are identified as being resistive ballooning modes. Their growth rates decrease for temperatures increasing towards the experimentally measured temperature at the L-H transition. The growth rates are larger for lower effective charge Z(eff). This dependence is shown to be in qualitative agreement with recent and past experimental observations of reduced Z(eff) associated with lower L-H power thresholds.

Year of Publication
2014
Journal
Nuclear Fusion
Volume
54
Issue
2
Number of Pages
022001
Date Published
Feb
ISBN Number
0029-5515; 1741-4326
DOI
10.1088/0029-5515/54/2/022001
PId
243547f2c07e1c57e76e9b4147717183
Label
OA
Journal Article
Download citation