Plasma facing components inside future nuclear fusion reactors are subjected to a high heat load and intense irradiation conditions. Using advanced computational material models, several problems can be solved that reflect tungsten monoblocks under fusion relevant loading scenarios. This allows for the identification of the conditions under which material failure is probable. The material model and parameters are identified such that the mechanical behaviour is in accordance with the homogenized behaviour of a previously developed crystal plasticity model on the microscopic scale. The heterogeneous stress field that follows is analysed in order to assess the probability of material failure, which is typically reflected by unstable crack pro...
AbstractSince the ITER divertor design includes tungsten monoblocks in the vertical target where hea...
Abstract -This study presents a computational model for studying the mechanical effects of thermal s...
The fracture behavior of plasma-facing components (PFCs) under extreme plasma-material interaction c...
Plasma facing components inside future nuclear fusion reactors are subjected to a high heat load and...
The lifetime of the divertor in tokamak nuclear fusion reactors is uncertain, due to the severe heat...
This work contributes to a better understanding of the micromechanics of tungsten during cyclic heat...
In the full-tungsten divertor qualification program at ITER Organization, macro-cracks, so called se...
Tungsten becomes significantly more brittle when exposed to neutron irradiation, which can be detrim...
Tungsten components inside fusion reactors are subjected to extreme conditions, including an excepti...
Transient events such as ELMs in large plasma devices lead to significant heat load on plasma-facing...
In the future fusion devices, ELMs-induced transient heat flux may lead to the surface cracking of t...
\u3cp\u3eThe economical lifetime of the divertor is a key concern for realizing nuclear fusion react...
Extending the lifetime of tungsten based plasma facing components for future fusion reactors remains...
In nuclear fusion devices the surfaces directly facing the plasma are irradiated with high energy fl...
A computational procedure is proposed in order to predict the initiation of intergranular cracks in ...
AbstractSince the ITER divertor design includes tungsten monoblocks in the vertical target where hea...
Abstract -This study presents a computational model for studying the mechanical effects of thermal s...
The fracture behavior of plasma-facing components (PFCs) under extreme plasma-material interaction c...
Plasma facing components inside future nuclear fusion reactors are subjected to a high heat load and...
The lifetime of the divertor in tokamak nuclear fusion reactors is uncertain, due to the severe heat...
This work contributes to a better understanding of the micromechanics of tungsten during cyclic heat...
In the full-tungsten divertor qualification program at ITER Organization, macro-cracks, so called se...
Tungsten becomes significantly more brittle when exposed to neutron irradiation, which can be detrim...
Tungsten components inside fusion reactors are subjected to extreme conditions, including an excepti...
Transient events such as ELMs in large plasma devices lead to significant heat load on plasma-facing...
In the future fusion devices, ELMs-induced transient heat flux may lead to the surface cracking of t...
\u3cp\u3eThe economical lifetime of the divertor is a key concern for realizing nuclear fusion react...
Extending the lifetime of tungsten based plasma facing components for future fusion reactors remains...
In nuclear fusion devices the surfaces directly facing the plasma are irradiated with high energy fl...
A computational procedure is proposed in order to predict the initiation of intergranular cracks in ...
AbstractSince the ITER divertor design includes tungsten monoblocks in the vertical target where hea...
Abstract -This study presents a computational model for studying the mechanical effects of thermal s...
The fracture behavior of plasma-facing components (PFCs) under extreme plasma-material interaction c...