Impact Erosion Model for Gravity-Dominated Planetesimals
arXiv:1703.03053 · doi:10.1016/j.icarus.2017.03.009
Abstract
Disruptive collisions have been regarded as an important process for planet formation, while non-disruptive, small-scale collisions (hereafter called erosive collisions) have been underestimated or neglected by many studies. However, recent studies have suggested that erosive collisions are also important to the growth of planets, because they are much more frequent than disruptive collisions. Although the thresholds of the specific impact energy for disruptive collisions (Q_RD^*) have been investigated well, there is no reliable model for erosive collisions. In this study, we systematically carried out impact simulations of gravity-dominated planetesimals for a wide range of specific impact energy (Q_R) from disruptive collisions (Q_R ~ Q_RD^*) to erosive ones (Q_R << Q_RD^*) using the smoothed particle hydrodynamics method. We found that the ejected mass normalized by the total mass (M_ej/M_tot) depends on the numerical resolution, the target radius (R_tar) and the impact velocity (v_imp), as well as on Q_R, but that it can be nicely scaled by Q_RD^* for the parameter ranges investigated (R_tar = 30-300 km, v_imp = 2-5 km/s). This means that M_ej/M_tot depends only on Q_R/Q_RD^* in these parameter ranges. We confirmed that the collision outcomes for much less erosive collisions (Q_R < 0.01 Q_RD^*) converge to the results of an impact onto a planar target for various impact angles and that M_ej/M_tot = C * QR/QRD* holds. For disruptive collisions (Q_R ~ Q_RD^*), the curvature of the target has a significant effect on Mej/Mtot. We also examined the angle-averaged value of M_ej/M_tot and found that the numerically obtained relation between angle-averaged M_ej/M_tot and Q_R/Q_RD^* is very similar to the cases for 45-degree impacts. We proposed a new erosion model based on our numerical simulations for future research on planet formation with collisional erosion.
Accepted for publication in Icarus, 41 pages, 16 figures
References in corpus (6)
- Variations on Debris Disks: Icy Planet Formation at 30-150 AU for 1-3 Solar Mass Main Sequence Stars
- Formation of Phobos and Deimos via a Giant Impact
- SPH calculations of asteroid disruptions: The role of pressure dependent failure models
- Warm Debris Disks Produced by Giant Impacts During Terrestrial Planet Formation
- Resolution Dependence of Disruptive Collisions between Planetesimals in the Gravity Regime
- The Giant Impact Simulations with Density Independent Smoothed Particle Hydrodynamics
Cited by in corpus (19)
- The terrestrial late veneer from core disruption of a lunar-sized impactor
- Scaling laws for the geometry of an impact-induced magma ocean
- Hydrocode modeling of the spallation process during hypervelocity impacts: Implications for the ejection of Martian meteorites
- Dust-to-gas ratio resurgence in circumstellar disks due to the formation of giant planets: the case of HD 163296
- Fragment properties from large-scale asteroid collisions: I: Results from SPH/N-body simulations using porous parent bodies and improved material models
- The Effect of Inefficient Accretion on Planetary Differentiation
- The Role of Giant Impacts in Planet Formation
- Fates of hydrous materials during planetesimal collisions
- Machine learning applied to simulations of collisions between rotating, differentiated planets
- Implantation of Martian materials in the inner solar system by a mega impact on Mars
- Collisional Disruption of Planetesimals in the Gravity Regime with iSALE Code: Comparison with SPH code for Purely Hydrodynamic Bodies
- Escape and accretion by cratering impacts: Formulation of scaling relations for high-speed ejecta
- Impact Ejecta near the Impact Point Observed using Ultra-high-speed Imaging and SPH Simulations, and a Comparison of the Two Methods
- Importance of Giant Impact Ejecta for Orbits of Planets Formed during the Giant Impact Era
- Residual Neural Networks for the Prediction of Planetary Collision Outcomes
- Erosion and accretion by cratering impacts on rocky and icy bodies
- The Properties of Planetesimal Collisions under Jupiter's Perturbation and the Application to Chondrule Formation via Impact Jetting
- Chondrule formation by collisions of planetesimals containing volatiles triggered by Jupiter's formation
- Merging Criteria for Planetesimal Collisions