Chemical composition is an important factor that affects stellar evolution. The element abundance on the stellar surface evolves along the lifetime of the star because of transport processes, including atomic diffusion. However, models of stars with masses higher than about 1.2Msun predict unrealistic variations at the stellar surface. This indicates the need for competing transport processes that are mostly computationally expensive for large grids of stellar models. The purpose of this study is to implement turbulent mixing in stellar models and assess the possibility of reproducing the effect of radiative accelerations with turbulent mixing for elements like iron in order to make the computation of large grids possible. We computed stell...
peer reviewedSubdwarf B (sdB) stars show chemical peculiarities that cannot be explained by diffusio...
Atomic diffusion, including the effect of radiative accelerations on individual elements, leads to v...
The atomic (microscopic) diffusion of individual elements in stellar interiors and atmospheres lead ...
Context. Chemical composition is an important factor that affects stellar evolution. The element abu...
Chemical transport mechanisms are a key ingredient in stellar modelling. One of the most important i...
Context. When modelling stars with masses higher than 1.2 M⊙ with no observed chemical peculiarity, ...
International audienceContext. When modelling stars with masses higher than 1.2 M⊙ with no observed ...
The chemical transport mechanisms are key ingredients in stellar evolution. However, the computation...
Iron-rich layers are known to form in the stellar subsurface through a combination of gravitational ...
Atomic diffusion in stars is efficient in changing the distribution of elements slowly but strongly ...
Aims. Atomic diffusion, including the effect of radiative accelerations on individual elements, lead...
Context. Chemical element transport processes are among the crucial physical processes needed for pr...
Context. The pulsation frequencies of early B-type stars cannot be reproduced using stellar models w...
Context. Evolutionary trends in the surface abundances of heavier elements have recently been identi...
Atomic di usion, including the effect of radiative accelerations on individual elements, leads to va...
peer reviewedSubdwarf B (sdB) stars show chemical peculiarities that cannot be explained by diffusio...
Atomic diffusion, including the effect of radiative accelerations on individual elements, leads to v...
The atomic (microscopic) diffusion of individual elements in stellar interiors and atmospheres lead ...
Context. Chemical composition is an important factor that affects stellar evolution. The element abu...
Chemical transport mechanisms are a key ingredient in stellar modelling. One of the most important i...
Context. When modelling stars with masses higher than 1.2 M⊙ with no observed chemical peculiarity, ...
International audienceContext. When modelling stars with masses higher than 1.2 M⊙ with no observed ...
The chemical transport mechanisms are key ingredients in stellar evolution. However, the computation...
Iron-rich layers are known to form in the stellar subsurface through a combination of gravitational ...
Atomic diffusion in stars is efficient in changing the distribution of elements slowly but strongly ...
Aims. Atomic diffusion, including the effect of radiative accelerations on individual elements, lead...
Context. Chemical element transport processes are among the crucial physical processes needed for pr...
Context. The pulsation frequencies of early B-type stars cannot be reproduced using stellar models w...
Context. Evolutionary trends in the surface abundances of heavier elements have recently been identi...
Atomic di usion, including the effect of radiative accelerations on individual elements, leads to va...
peer reviewedSubdwarf B (sdB) stars show chemical peculiarities that cannot be explained by diffusio...
Atomic diffusion, including the effect of radiative accelerations on individual elements, leads to v...
The atomic (microscopic) diffusion of individual elements in stellar interiors and atmospheres lead ...