Failed Growth at the Bouncing Barrier in Planetesimal Formation
arXiv:1609.00501 · doi:10.3847/0004-637X/827/2/110
Abstract
In laboratory experiments, we studied collisions of ensembles of compact (filling factor 0.33) millimeter dust aggregates composed of micrometer quartz grains. We used cylindrical aggregates, triangular aggregates, square aggregates, and rectangular aggregates. Ensembles of equal size aggregates as well as ensembles with embedded larger aggregates were studied. The typical collision velocities are 10-20 mm . High spatial and temporal resolution imaging unambiguously shows that individual collisions lead to sticking with a high probability of 20 percent. This leads to connected clusters of aggregates. The contact areas between two aggregates increase with collision velocity. However, this cluster growth is only temporary, as subsequent collisions of aggregates and clusters eventually lead to the detachment of all aggregates from a cluster. The contacts are very fragile as aggregates cannot be compressed further or fragment under our experimental conditions to enhance the contact stability. Therefore, the evolution of the ensemble always leads back to a distribution of individual aggregates of initial size. This supports and extends earlier experiments showing that a bouncing barrier in planetesimal formation would be robust against shape and size variations.
References in corpus (6)
- Closed-form expressions for particle relative velocities induced by turbulence
- The stickiness of micrometer-sized water-ice particles
- How to form planetesimals from mm-sized chondrules and chondrule aggregates
- Can dust coagulation trigger streaming instability?
- High Velocity Dust Collisions: Forming Planetesimals in a Fragmentation Cascade with Final Accretion
- Macroscopic Dust in Protoplanetary Disks - From Growth to Destruction
Cited by in corpus (13)
- Contacts of Water Ice in Protoplanetary Disks - Laboratory Experiments
- The Formation of Stellar Clusters in Magnetized, Filamentary Infrared Dark Clouds
- Seeding the Formation of Mercurys: An Iron-sensitive Bouncing Barrier in Disk Magnetic Fields
- Is There a Temperature Limit in Planet Formation at 1000 K?
- Composition and Size Dependent Sorting in Preplanetary Growth: Seeding the Formation of Mercury-like Planets
- A Smoking Gun for Planetesimal Formation: Charge Driven Growth into a New Size Range
- Growth of Aggregates with Liquid-Like Ice-Shells in Protoplanetary Discs
- Observation of bottom-up formation for charged grain aggregates related to pre-planetary evolution beyond the bouncing barrier
- ARISE: A granular matter experiment on the International Space Station
- Dense Particle Clouds in Laboratory Experiments in Context of Drafting and Streaming Instability
- Experimental study of clusters in dense granular gas and implications for the particle stopping time in protoplanetary disks
- Destruction of eccentric planetesimals by ram pressure and erosion
- Accretion of eroding pebbles and planetesimals in planetary envelopes