In a tokamak a part of the energy is deposited as heat in the region called divertor. Liquid metal divertors seem to be the candidate for next generation fusion experiments due to their numerous cooling channels like ionization and line radiation, and due to the fact that evaporated metals can be easily replenished thanks to high capillarity of metals. One on the main problems of this divertor concept is that if the metal density in the main plasma reaches the Greenwald limit it can cause disruption. For this reason lithium is the best candidate for liquid metal divertors due to its low Z number. Liquid lithium targets concepts can be studied in linear devices such as Magnum-PSI that reproduces divertor high density, low electron tem...
\u3cp\u3eFor DEMO and beyond, liquid metal plasma-facing components are considered due to their resi...
Liquid metal walls have the potential to solve first-wall problems for fusion reactors, such as heat...
The design and implementation of future flowing liquid-lithium plasma-facing components (LLPFCs) wil...
To develop realistic liquid lithium divertors for future fusion reactors, this paper aims to improve...
Solutions for the steady-state power exhaust problem in future fusion reactors (e.g. DEMO) are not a...
Considering that solutions for the steady-state power exhaust problem in future fusion reactors (e.g...
The lithium vapor box divertor is a potential solution for power exhaust in toroidal confinement dev...
Two small liquid metal targets based on the capillary porous structure were exposed to the divertor ...
The application of liquid metal, especially liquid lithium, as a plasma facing component (PFC) has t...
Fusion power plants are likely to require near complete detachment of the divertor plasma from the d...
A model is formulated to make a first estimate of the maximum tolerable power of liquid lithium dive...
In this work, a conceptual design for a pre-filled liquid lithium divertor target for the National S...
\u3cp\u3eFor DEMO and beyond, liquid metal plasma-facing components are considered due to their resi...
Liquid metal walls have the potential to solve first-wall problems for fusion reactors, such as heat...
The design and implementation of future flowing liquid-lithium plasma-facing components (LLPFCs) wil...
To develop realistic liquid lithium divertors for future fusion reactors, this paper aims to improve...
Solutions for the steady-state power exhaust problem in future fusion reactors (e.g. DEMO) are not a...
Considering that solutions for the steady-state power exhaust problem in future fusion reactors (e.g...
The lithium vapor box divertor is a potential solution for power exhaust in toroidal confinement dev...
Two small liquid metal targets based on the capillary porous structure were exposed to the divertor ...
The application of liquid metal, especially liquid lithium, as a plasma facing component (PFC) has t...
Fusion power plants are likely to require near complete detachment of the divertor plasma from the d...
A model is formulated to make a first estimate of the maximum tolerable power of liquid lithium dive...
In this work, a conceptual design for a pre-filled liquid lithium divertor target for the National S...
\u3cp\u3eFor DEMO and beyond, liquid metal plasma-facing components are considered due to their resi...
Liquid metal walls have the potential to solve first-wall problems for fusion reactors, such as heat...
The design and implementation of future flowing liquid-lithium plasma-facing components (LLPFCs) wil...