Simplified derivation of the collision probability of two objects in independent Keplerian orbits
arXiv:1701.03096 · doi:10.3847/1538-3881/aa6aa7
Abstract
Many topics in planetary studies demand an estimate of the collision probability of two objects moving on nearly Keplerian orbits. In the classic works of Öpik (1951) and Wetherill (1967), the collision probability was derived by linearizing the motion near the collision points, and there is now a vast literature using their method. We present here a simpler and more physically motivated derivation for non-tangential collisions in Keplerian orbits, as well as for tangential collisions that were not previously considered. Our formulas have the added advantage of being manifestly symmetric in the parameters of the two colliding bodies. In common with the Öpik-Wetherill treatments, we linearize the motion of the bodies in the vicinity of the point of orbit intersection (or near the points of minimum distance between the two orbits) and assume a uniform distribution of impact parameter within the collision radius. We point out that the linear approximation leads to singular results for the case of tangential encounters. We regularize this singularity by use of a parabolic approximation of the motion in the vicinity of a tangential encounter.
27 pages, 8 figures, accepted to AJ
References in corpus (1)
Cited by in corpus (10)
- Assessing and Minimizing Collisions in Satellite Mega-Constellations
- The hazardous km-sized NEOs of the next thousands of years
- Binary stripping as a plausible origin of correlated pairs of extreme trans-Neptunian objects
- Dynamical and biological panspermia constraints within multi-planet exosystems
- Effects of Planetesimal Accretion on the Thermal and Structural Evolution of Sub-Neptunes
- Dust Accretion onto Exoplanets
- Raining Rocks: An analytical formulation for collision timescales in planetary systems
- Gas-depleted planet formation occurred in the four-planet system around the red dwarf LHS 1903
- Collision detection for N-body Kepler systems
- A Pluto--Charon Sonata IV. Improved Constraints on the Dynamical Behavior and Masses of the Small Satellites