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Updated: Jul 25, 2026

Applying X-ray Imaging Crystal Spectroscopy for Use as a High Temperature Plasma Diagnostic
Published on: August 25, 2016
New advanced operational regime on the W7-AS stellarator
K McCormick1, P Grigull, R Burhenn
1Max-Planck-Institut für Plasmaphysik, EURATOM Association, D-85748 Garching, Germany. Kent.McCormick@ipp.mpg.de
A new plasma operational regime in the Wendelstein stellarator W7-AS was discovered, improving energy confinement and avoiding impurity issues. This regime enables high-density, quasistationary discharges with significant radiation and partial plasma detachment.
Area of Science:
- Plasma physics
- Stellarator research
- Fusion energy
Background:
- The Wendelstein stellarator W7-AS is a key facility for magnetic confinement fusion research.
- Optimizing plasma operational regimes is crucial for achieving stable and efficient fusion reactions.
Purpose of the Study:
- To discover and characterize a new promising plasma operational regime in the Wendelstein stellarator W7-AS.
- To investigate the properties and potential benefits of this novel regime for fusion energy applications.
Main Methods:
- Experimental operation of the Wendelstein stellarator W7-AS.
- Analysis of plasma parameters including density profiles, energy confinement, and impurity transport.
- Investigation of radiation levels and divertor target plate interactions.
- Demonstration of electron Bernstein wave heating via linear mode conversion.
Main Results:
- Discovery of a new plasma regime above a threshold density, characterized by flat density profiles.
- Achieved high energy confinement (up to twice standard scaling) and low impurity confinement times.
- Observed edge-localized radiation and avoided impurity accumulation.
- Realized quasistationary discharges with high line-averaged densities (up to 4 x 10^20 m^-3) and radiation levels up to 90%.
- Demonstrated partial plasma detachment at divertor targets and achieved an average beta value of 3.1% at 0.9 T.
Conclusions:
- The newly discovered plasma regime offers significant advantages for stellarator operation, including improved energy confinement and impurity control.
- This regime facilitates high-density, high-beta plasma conditions suitable for advanced heating methods like electron Bernstein wave heating.
- The findings represent a promising step towards efficient and stable operation of future fusion devices.
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