Aims.We study the accretion of dust particles of various sizes onto embedded massive gas giant planets, where we take into account the structure of the gas disk due to the presence of the planet. The accretion rate of solids is important for the structure of giant planets: it determines the growth rate of the solid core that may be present as well as their final enrichment in solids. Methods.We use the RODEO hydrodynamics solver to solve the flow equations for the gas, together with a particle approach for the dust. The solver for the particles' equations of motion is implicit with respect to the drag force, which allows us to treat the whole dust size spectrum. Results.We find that dust accretion is limited to the...
We carry out three dimensional smoothed particle hydrodynamics simulations to study the role of grav...
Received — ; accepted — The formation of planetary cores must proceed rapidly in order for the giant...
Context. With hundreds of exoplanets detected, it is necessary to revisit giant planets accretion mo...
We study the accretion of dust particles of various sizes onto embedded massive gas giant planets, w...
We study the dynamics of gas and dust in a protoplanetary disk in the presence of embedded planets. ...
Aims. We study the dynamics of gas and dust in a protoplanetary disk in the presence of embedded pla...
We run numerical simulations to study the accretion of gas and dust grains on to gas giant planets e...
We carried out 3D dust+gas radiative hydrodynamic simulations of forming planets. We investigated a ...
Giant planets form embedded in a protoplanetary disc around a young star. Close to the midplane a la...
The inferred dust masses from Class II protoplanetary disc observations are smaller or equal to the ...
Context. On the basis of current theoretical models, giant planets can form via gravitatio...
Observations and models of giant planets indicate that such objects are enriched in heavy elements c...
Abstract We review the current theoretical understanding how growth from micro-meter sized dust to m...
We investigate the interaction of gas and dust in a protoplanetary disk in the presence of a massiv...
Context. Recent high-resolution observations of protoplanetary disks have revealed ring-like structu...
We carry out three dimensional smoothed particle hydrodynamics simulations to study the role of grav...
Received — ; accepted — The formation of planetary cores must proceed rapidly in order for the giant...
Context. With hundreds of exoplanets detected, it is necessary to revisit giant planets accretion mo...
We study the accretion of dust particles of various sizes onto embedded massive gas giant planets, w...
We study the dynamics of gas and dust in a protoplanetary disk in the presence of embedded planets. ...
Aims. We study the dynamics of gas and dust in a protoplanetary disk in the presence of embedded pla...
We run numerical simulations to study the accretion of gas and dust grains on to gas giant planets e...
We carried out 3D dust+gas radiative hydrodynamic simulations of forming planets. We investigated a ...
Giant planets form embedded in a protoplanetary disc around a young star. Close to the midplane a la...
The inferred dust masses from Class II protoplanetary disc observations are smaller or equal to the ...
Context. On the basis of current theoretical models, giant planets can form via gravitatio...
Observations and models of giant planets indicate that such objects are enriched in heavy elements c...
Abstract We review the current theoretical understanding how growth from micro-meter sized dust to m...
We investigate the interaction of gas and dust in a protoplanetary disk in the presence of a massiv...
Context. Recent high-resolution observations of protoplanetary disks have revealed ring-like structu...
We carry out three dimensional smoothed particle hydrodynamics simulations to study the role of grav...
Received — ; accepted — The formation of planetary cores must proceed rapidly in order for the giant...
Context. With hundreds of exoplanets detected, it is necessary to revisit giant planets accretion mo...