Colliding Decimetre Dust
arXiv:1304.4810 · doi:10.1088/0004-637X/769/2/151
Abstract
Collisional evolution is a key process in planetesimal formation and decimetre bodies play a key role in the different models. However, the outcome of collisions between two dusty decimetre bodies has never been studied experimentally. Therefore, we carried out microgravity collision experiments in the Bremen drop tower. The agglomerates consist of quartz with irregularly shaped micrometre-sized grains and the mean volume filling factor is 0.437 0.004. The aggregates are cylindrical with 12 cm in height and 12 cm in diameter and typcial masses are 1.5 kg. These are the largest and most massive dust aggregates studied in collisions to date. We observed rebound and fragmentation but no sticking in the velocity range between 0.8 and 25.7 cm s. The critical fragmentation velocity for split up of an aggregate is 16.2 0.4 cm s. At lower velocities the aggregates bounce of each other. In this velocity range the coefficient of restitution decreases with increasing collision velocity from 0.8 to 0.3. While the aggregates are very weak the critical specific kinetic energy for fragmentation is a factor 6 larger than expected. Collisions of large bodies in protoplanetary discs are supposed to be much faster and the generation of smaller fragments is likely. In planetary rings collision velocities are of the order of a few cm s and are thereby in the same range investigated in these experiments. The coefficient of restitution of dust agglomerates and regolith covered ice particles, which are common in planetary rings, are similar.
6 Pages, 4 Figures
References in corpus (9)
- Coagulation, fragmentation and radial motion of solid particles in protoplanetary disks
- Constraints on the Radial Variation of Grain Growth in the AS 209 Circumstellar Disk
- Dust sedimentation and self-sustained Kelvin-Helmholtz turbulence in protoplanetary disk mid-planes. I. Radially symmetric simulations
- Breaking through: The effects of a velocity distribution on barriers to dust growth
- The physics of protoplanetesimal dust agglomerates. VII The low-velocity collision behavior of large dust agglomerates
- Experiments on centimeter-sized dust aggregates and their implications for planetesimal formation
- Compression Behaviour of Porous Dust Agglomerates
- Decimetre dust aggregates in protoplanetary discs
- Crossing barriers in planetesimal formation: The growth of mm-dust aggregates with large constituent grains
Cited by in corpus (14)
- Dust evolution in protoplanetary discs and the formation of planetesimals. What have we learned from laboratory experiments?
- Comets formed in solar-nebula instabilities! -- An experimental and modeling attempt to relate the activity of comets to their formation process (corrigendum included)
- Grain Growth in the Circumstellar Disks of the Young Stars CY Tau and DoAr 25
- Preplanetary scavengers: Growing tall in dust collisions
- Experimental Study on Bouncing Barriers in Protoplanetary Disks
- Macroscopic Dust in Protoplanetary Disks - From Growth to Destruction
- Understanding planet formation using microgravity experiments
- The role of pebble fragmentation in planetesimal formation I. Experimental study
- Formation of Comets
- Low-velocity collision behaviour of clusters composed of sub-mm sized dust aggregates
- Collisions of solid ice in planetesimal formation
- Destruction of eccentric planetesimals by ram pressure and erosion
- Super-Earth formation in systems with cold giants
- Selective Aggregation Experiments on Planetesimal Formation and Mercury-Like Planets