Self-passivating Metal Alloys with Reduced Thermo-oxidation (SMART) are under development for the primary application as plasma-facing materials for the first wall in a fusion DEMOnstration power plant (DEMO). SMART materials must combine suppressed oxidation in case of an accident and an acceptable plasma performance during the regular operation of the future power plant. Modern SMART materials contain chromium as a passivating element, yttrium as an active element and a tungsten base matrix. An overview of the research and development program on SMART materials is presented and all major areas of the structured R&D are explained. Attaining desired performance under accident and regular plasma conditions are vital elements of an R&D progra...
Self-passivating tungsten based alloys for the first wall armour of future fusion reactors are expec...
Tungsten is considered the main candidate material for the first-wall in DEMO due to its high meltin...
Tungsten (W) currently is the main candidate as plasma-facing armour material for the first wall of ...
Self-passivating Metal Alloys with Reduced Thermo-oxidation (SMART) are under development for the pr...
Self-passivating Metal Alloys with Reduced Thermo-oxidation (SMART) are under development for the pr...
Self-passivating, so-called smart alloys are under development for a future fusion power plant. Thes...
In case of an accident in the future fusion power plant like DEMO, the loss-of-coolant may happen si...
Tungsten is currently deemed as a promising plasma-facing material (PFM) for the future power plant ...
The severe particle, radiation and neutron environment in a future fusion power plant requires the d...
During an accident with loss-of-coolant and air ingress in DEMO, the temperature of tungsten first w...
Tungsten test is currently the baseline first-wall armor material for a future DEMOnstration power p...
Tungsten (W) is currently deemed the main candidate for the plasma-facing armor material of the firs...
AbstractTungsten is a prime material candidate for the first wall of a future fusion reactor. In the...
AbstractSelf-passivating tungsten based alloys for the first wall armour of future fusion reactors a...
Tungsten is a prime material candidate for the first wall of a future fusion reactor. In the case of...
Self-passivating tungsten based alloys for the first wall armour of future fusion reactors are expec...
Tungsten is considered the main candidate material for the first-wall in DEMO due to its high meltin...
Tungsten (W) currently is the main candidate as plasma-facing armour material for the first wall of ...
Self-passivating Metal Alloys with Reduced Thermo-oxidation (SMART) are under development for the pr...
Self-passivating Metal Alloys with Reduced Thermo-oxidation (SMART) are under development for the pr...
Self-passivating, so-called smart alloys are under development for a future fusion power plant. Thes...
In case of an accident in the future fusion power plant like DEMO, the loss-of-coolant may happen si...
Tungsten is currently deemed as a promising plasma-facing material (PFM) for the future power plant ...
The severe particle, radiation and neutron environment in a future fusion power plant requires the d...
During an accident with loss-of-coolant and air ingress in DEMO, the temperature of tungsten first w...
Tungsten test is currently the baseline first-wall armor material for a future DEMOnstration power p...
Tungsten (W) is currently deemed the main candidate for the plasma-facing armor material of the firs...
AbstractTungsten is a prime material candidate for the first wall of a future fusion reactor. In the...
AbstractSelf-passivating tungsten based alloys for the first wall armour of future fusion reactors a...
Tungsten is a prime material candidate for the first wall of a future fusion reactor. In the case of...
Self-passivating tungsten based alloys for the first wall armour of future fusion reactors are expec...
Tungsten is considered the main candidate material for the first-wall in DEMO due to its high meltin...
Tungsten (W) currently is the main candidate as plasma-facing armour material for the first wall of ...