Controlling the recycling of hydrogen and the release of impurities from the plasma facing components proved to be essential and challenging throughout the first divertor campaign on W7-X. This paper discusses the conditioning requirements throughout the first divertor campaign on Wendelstein 7-X. Baking at 150 °C and glow discharge conditioning (GDC) in H2 is performed after the initial pump down of the vacuum vessel. Experimental programs in hydrogen are interlaced with He discharges to desaturate the wall from hydrogen, recover good recycling conditions and hence establish plasma density control. Optimized He ECRH wall conditioning procedures consisted of sequences of short discharges with fixed duty cycle. He-GDC remained however needed...
W7-X completed its plasma operation in hydrogen with island divertor and inertially cooled test dive...
Wall conditioning is essential in tokamak and stellarator research to achieve plasma performance and...
The basic design of a reliable and robust glow discharge cleaning (GDC) system for Wendelstein 7-X i...
Controlling the recycling of hydrogen and the release of impurities from the plasma facing component...
For successful operation of Wendelstein 7-X (W7-X) control of plasma impurity content and fuel recyc...
Wall conditioning plays an important role in achieving record plasma performance on the superconduct...
Hydrogen- and deuterium-fueled glow discharges are used for the initial conditioning of magnetic fus...
The optimized superconducting stellarator device Wendelstein 7-X (with major radius , minor radius ,...
The influence of a number of parameters on the cleaning and preconditioning efficiency of a combined...
Wall conditioning in DIII-D is one of the most important factors in achieving reproducible high conf...
The Wendelstein 7-X (W7-X) optimized stellarator fusion experiment, which went into operation in 201...
Wall conditioning will be required in ITER to control fuel and impurity recycling, as well as tritiu...
Plasma–wall interactions play a crucial role for the performance of fusion devices and the lifetime ...
Ion Cyclotron Wall Conditioning (ICWC), applicable in presence of the toroidal magnetic field, is en...
W7-X completed its plasma operation in hydrogen with island divertor and inertially cooled test dive...
Wall conditioning is essential in tokamak and stellarator research to achieve plasma performance and...
The basic design of a reliable and robust glow discharge cleaning (GDC) system for Wendelstein 7-X i...
Controlling the recycling of hydrogen and the release of impurities from the plasma facing component...
For successful operation of Wendelstein 7-X (W7-X) control of plasma impurity content and fuel recyc...
Wall conditioning plays an important role in achieving record plasma performance on the superconduct...
Hydrogen- and deuterium-fueled glow discharges are used for the initial conditioning of magnetic fus...
The optimized superconducting stellarator device Wendelstein 7-X (with major radius , minor radius ,...
The influence of a number of parameters on the cleaning and preconditioning efficiency of a combined...
Wall conditioning in DIII-D is one of the most important factors in achieving reproducible high conf...
The Wendelstein 7-X (W7-X) optimized stellarator fusion experiment, which went into operation in 201...
Wall conditioning will be required in ITER to control fuel and impurity recycling, as well as tritiu...
Plasma–wall interactions play a crucial role for the performance of fusion devices and the lifetime ...
Ion Cyclotron Wall Conditioning (ICWC), applicable in presence of the toroidal magnetic field, is en...
W7-X completed its plasma operation in hydrogen with island divertor and inertially cooled test dive...
Wall conditioning is essential in tokamak and stellarator research to achieve plasma performance and...
The basic design of a reliable and robust glow discharge cleaning (GDC) system for Wendelstein 7-X i...