A cobalt-free tungsten carbide cermet (WC-FeNi) has been subjected to oxyacetylene flame tests to simulate extreme operating conditions such as a worst-case fusion reactor accident. In such an accident, air-ingress to the reactor may impinge on components operating at surface temperatures in excess of 1000 °C, leading to tungsten oxide formation and its subsequent hazardous volatilisation. Here, the most challenging accident stage has been simulated, where the initial air-ingress could lead to extremely rapid air-flow rates. These conditions were simulated using an oxidising oxyacetylene flame. The separation between flame nozzle and sample was varied to permit peak surface temperatures of ~950–1400 °C. When the peak temperature was below 1...
A tungsten oxidation mechanism map is developed to clarify literature confusion about the dominant o...
Since the nuclear accident at Fukushima Daiichi Nuclear Power Station in 2011, a considerable number...
Self-passivating tungsten based alloys for the first wall armour of future fusion reactors are expec...
The oxidation behavior of International Thermonuclear Experimental Reactor (ITER)-reference tungsten...
Tungsten carbide (WC) has been found to have higher resistance to plasma-induced thermal shock compa...
Proceedings of: 19th International Conference on Fusion Reactor Materials (ICFRM-19), 27 October-01 ...
AbstractTungsten is a prime material candidate for the first wall of a future fusion reactor. In the...
As part of the APT project, it was necessary to quantify the release of tungsten from the APT spalla...
Tungsten is considered the main candidate material for the first-wall in DEMO due to its high meltin...
AbstractPrevious studies report that WC oxidises in air more readily than W. However, systematic the...
Tungsten (W) is deemed as the main candidate for the first wall armor material of future fusion powe...
This study is for: The Fifteenth International Conference on Fusion Reactor Materials (ICFRM-15) wa...
Tungsten (W) currently is the main candidate as plasma-facing armour material for the first wall of ...
Elektrizität aus Kernfusion ist ein aussichtsreicher Ansatz. Ein Unfallszenario eines Kraftwerkes ni...
The use of self-passivating tungsten alloys for the first wall armor of future fusion reactors is ad...
A tungsten oxidation mechanism map is developed to clarify literature confusion about the dominant o...
Since the nuclear accident at Fukushima Daiichi Nuclear Power Station in 2011, a considerable number...
Self-passivating tungsten based alloys for the first wall armour of future fusion reactors are expec...
The oxidation behavior of International Thermonuclear Experimental Reactor (ITER)-reference tungsten...
Tungsten carbide (WC) has been found to have higher resistance to plasma-induced thermal shock compa...
Proceedings of: 19th International Conference on Fusion Reactor Materials (ICFRM-19), 27 October-01 ...
AbstractTungsten is a prime material candidate for the first wall of a future fusion reactor. In the...
As part of the APT project, it was necessary to quantify the release of tungsten from the APT spalla...
Tungsten is considered the main candidate material for the first-wall in DEMO due to its high meltin...
AbstractPrevious studies report that WC oxidises in air more readily than W. However, systematic the...
Tungsten (W) is deemed as the main candidate for the first wall armor material of future fusion powe...
This study is for: The Fifteenth International Conference on Fusion Reactor Materials (ICFRM-15) wa...
Tungsten (W) currently is the main candidate as plasma-facing armour material for the first wall of ...
Elektrizität aus Kernfusion ist ein aussichtsreicher Ansatz. Ein Unfallszenario eines Kraftwerkes ni...
The use of self-passivating tungsten alloys for the first wall armor of future fusion reactors is ad...
A tungsten oxidation mechanism map is developed to clarify literature confusion about the dominant o...
Since the nuclear accident at Fukushima Daiichi Nuclear Power Station in 2011, a considerable number...
Self-passivating tungsten based alloys for the first wall armour of future fusion reactors are expec...