Chondrules from high-velocity collisions: thermal histories and the agglomeration problem
arXiv:2009.10093 · doi:10.1093/mnras/stab503
Abstract
We assess whether chondrules, once-molten mm-sized spheres filling the oldest meteorites, could have formed from super-km/s collisions between planetesimals in the solar nebula. High-velocity collisions release hot and dense clouds of silicate vapor which entrain and heat chondrule precursors. Thermal histories of CB chondrules are reproduced for colliding bodies 10--100 km in radius. The slower cooling rates of non-CB, porphyritic chondrules point to colliders with radii 500 km. How chondrules, collisionally dispersed into the nebula, agglomerated into meteorite parent bodies remains a mystery. The same orbital eccentricities and inclinations that enable energetic collisions prevent planetesimals from re-accreting chondrules efficiently and without damage; thus the sedimentary laminations of the CB/CH chondrite Isheyevo are hard to explain by direct fallback of collisional ejecta. At the same time, planetesimal surfaces may be littered with the shattered remains of chondrules. The micron-sized igneous particles recovered from comet 81P/Wild-2 may have originated from in-situ collisions and subsequent accretion in the proto-Kuiper belt, obviating the need to transport igneous solids across the nebula. Asteroid sample returns from Hayabusa2 and OSIRIS-REx may similarly contain chondrule fragments.
Final MNRAS accepted and proofed version. Minor updates to Sections 2.3 and 3.2 discussing the treatment of the nebular headwind in previous work, plus additional references
References in corpus (18)
- Towards planetesimals: dense chondrule clumps in the protoplanetary nebula
- Origin of water in the inner Solar System: Planetesimals scattered inward during Jupiter and Saturn's rapid gas accretion
- How to form planetesimals from mm-sized chondrules and chondrule aggregates
- Aerosol Composition of Hot Giant Exoplanets Dominated by Silicates and Hydrocarbon Hazes
- Origin and Evolution of Short-Period Comets
- Turbulence sets the length scale for planetesimal formation: Local 2D simulations of streaming instability and planetesimal formation
- High Velocity Dust Collisions: Forming Planetesimals in a Fragmentation Cascade with Final Accretion
- Impact splash chondrule formation during planetesimal recycling
- The Formation of Ice Giants in a Packed Oligarchy: Instability and Aftermath
- Testing the Jeans, Toomre and Bonnor-Ebert concepts for planetesimal formation: 3D streaming instability simulations of diffusion regulated formation of planetesimals
- Cascade Model for Planetesimal Formation by Turbulent Clustering
- Silicate Melting and Vaporization during Rocky Planet Formation
- New insight into the Solar System's transition disk phase provided by the unusual meteorite Isheyevo
- Forming chondrules in impact splashes. I. Radiative cooling model
- Planetesimal collisions as a chondrule forming event
- Jetting during oblique impacts of spherical impactors
- Origin and dynamical evolution of the asteroid belt
- Aggregate Growth and Internal structures of Chondrite Parent Bodies Forming from Dense Clumps