Context. In the very first steps of the formation of a new planetary system, dust agglomerates grow inside the protoplanetary disk that rotates around the newly formed star. In this disk, collisions between the dust particles, induced by interactions with the surrounding gas, lead to sticking. Aggregates start growing until their sizes and relative velocities are high enough for collisions to result in bouncing or fragmentation. With the aim of investigating the transitions between sticking and bouncing regimes for colliding dust aggregates and the formation of clusters from multiple aggregates, the Suborbital Particle and Aggregation Experiment (SPACE) was flown on the ...
The first macroscopic bodies in protoplanetary disks are dust aggregates. We report on a number of e...
The first macroscopic bodies in protoplanetary disks are dust aggregates. We report on a number of e...
The growth of planetesimals is an essential step in planet formation. Decimetre-size dust agglomerat...
Context. In the very first steps of the formation of a new planetary system, dust agglomer...
Context. The experiment results presented apply to the very first stages of planet formation, when s...
In the very first steps of the formation of a new planetary system, dust agglomerates and grows insi...
Context. The experiment results presented apply to the very first stages of planet formation, when s...
Context. The experiment results presented apply to the very first stages of planet formation, when s...
Over the past years the processes involved in the growth of planetesimals have extensively been stud...
Context. Bouncing collisions of dust aggregates within the protoplanetary disk may have a significan...
Context. Bouncing collisions of dust aggregates within the protoplanetary disk may have a significan...
We performed laboratory experiments colliding 0.8-1.0 mm and 1.0-1.6 mm SiO2 dust aggregates with lo...
The sticking of micron sized dust particles due to surface forces in circumstellar disks is the firs...
Collisions of mm-size dust aggregates play a crucial role in the early phases of planet formation. I...
Context. The sticking of micron-sized dust particles caused by surface forces within circumstellar d...
The first macroscopic bodies in protoplanetary disks are dust aggregates. We report on a number of e...
The first macroscopic bodies in protoplanetary disks are dust aggregates. We report on a number of e...
The growth of planetesimals is an essential step in planet formation. Decimetre-size dust agglomerat...
Context. In the very first steps of the formation of a new planetary system, dust agglomer...
Context. The experiment results presented apply to the very first stages of planet formation, when s...
In the very first steps of the formation of a new planetary system, dust agglomerates and grows insi...
Context. The experiment results presented apply to the very first stages of planet formation, when s...
Context. The experiment results presented apply to the very first stages of planet formation, when s...
Over the past years the processes involved in the growth of planetesimals have extensively been stud...
Context. Bouncing collisions of dust aggregates within the protoplanetary disk may have a significan...
Context. Bouncing collisions of dust aggregates within the protoplanetary disk may have a significan...
We performed laboratory experiments colliding 0.8-1.0 mm and 1.0-1.6 mm SiO2 dust aggregates with lo...
The sticking of micron sized dust particles due to surface forces in circumstellar disks is the firs...
Collisions of mm-size dust aggregates play a crucial role in the early phases of planet formation. I...
Context. The sticking of micron-sized dust particles caused by surface forces within circumstellar d...
The first macroscopic bodies in protoplanetary disks are dust aggregates. We report on a number of e...
The first macroscopic bodies in protoplanetary disks are dust aggregates. We report on a number of e...
The growth of planetesimals is an essential step in planet formation. Decimetre-size dust agglomerat...