Context. Pebble accretion is a newly discovered mechanism to quickly grow the cores of planets. In pebble accretion, gravity and gas drag conspire to yield large collisional cross sections for small particles in protoplanetary disks. However, before pebble accretion commences, aerodynamic deflection may act to prevent planetesimals from becoming large, because particles tend to follow gas streamlines. Aims. We derive the planetesimal radius where pebble accretion is initiated and determine the growth timescales of planetesimals by sweep-up of small particles. Methods. The equation of motion for a pebble, including gas drag and gravitational interactions, was integrated in three dimensions at distances of 1, 3, and 10 AU fro...
Context. Understanding the growth of the cores of giant planets is a difficult problem. Recently, La...
Context. Models of planetary core growth by either planetesimal or pebble accretion are traditionall...
Received — ; accepted — The formation of planetary cores must proceed rapidly in order for the giant...
Context. Pebble accretion is a newly discovered mechanism to quickly grow the cores of planets. In p...
One method to build planets is through pebble accretion, where a planetesimal sweeps up pebbles in t...
The growth and migration of planetesimals in a young protoplanetary disk is fundamental to the plane...
We explore the growth of planetary embryos by planetesimal accretion up to and beyond the point wher...
Context. Coagulation theory predicts that micron-sized dust grains grow into pebbles, which drift in...
Context. The classical planetesimal accretion scenario for the formation of planets has recently evo...
Context. The accretion of pebbles onto planetary cores has been widely studied in recent years and i...
Pebble accretion refers to the assembly of rocky planet cores from particles whose velocity dispersi...
Context. In the theory of pebble accretion, planets form by the subsequent accretion of solids (micr...
Though ∼ 10M ⊕ mass rocky/icy cores are commonly held as a prerequisite for the formation of gas gia...
Context. Coagulation theory predicts that micron-sized dust grains grow into pebbles, which drift in...
Context. Planet formation by pebble accretion is an alternative to planetesimal-driven core accretio...
Context. Understanding the growth of the cores of giant planets is a difficult problem. Recently, La...
Context. Models of planetary core growth by either planetesimal or pebble accretion are traditionall...
Received — ; accepted — The formation of planetary cores must proceed rapidly in order for the giant...
Context. Pebble accretion is a newly discovered mechanism to quickly grow the cores of planets. In p...
One method to build planets is through pebble accretion, where a planetesimal sweeps up pebbles in t...
The growth and migration of planetesimals in a young protoplanetary disk is fundamental to the plane...
We explore the growth of planetary embryos by planetesimal accretion up to and beyond the point wher...
Context. Coagulation theory predicts that micron-sized dust grains grow into pebbles, which drift in...
Context. The classical planetesimal accretion scenario for the formation of planets has recently evo...
Context. The accretion of pebbles onto planetary cores has been widely studied in recent years and i...
Pebble accretion refers to the assembly of rocky planet cores from particles whose velocity dispersi...
Context. In the theory of pebble accretion, planets form by the subsequent accretion of solids (micr...
Though ∼ 10M ⊕ mass rocky/icy cores are commonly held as a prerequisite for the formation of gas gia...
Context. Coagulation theory predicts that micron-sized dust grains grow into pebbles, which drift in...
Context. Planet formation by pebble accretion is an alternative to planetesimal-driven core accretio...
Context. Understanding the growth of the cores of giant planets is a difficult problem. Recently, La...
Context. Models of planetary core growth by either planetesimal or pebble accretion are traditionall...
Received — ; accepted — The formation of planetary cores must proceed rapidly in order for the giant...