On the stickiness of CO and HO ice particles
arXiv:2102.06683 · doi:10.3847/1538-4357/abe61d
Abstract
Laboratory experiments revealed that CO ice particles stick less efficiently than HO ice particles, and there is an order of magnitude difference in the threshold velocity for sticking. However, the surface energies and elastic moduli of CO and HO ices are comparable, and the reason why CO ice particles were poorly sticky compared to HO ice particles was unclear. Here we investigate the effects of viscoelastic dissipation on the threshold velocity for sticking of ice particles using the viscoelastic contact model derived by Krijt et al. We find that the threshold velocity for sticking of CO ice particles reported in experimental studies is comparable to that predicted for perfectly elastic spheres. In contrast, the threshold velocity for sticking of HO ice particles is an order of magnitude higher than that predicted for perfectly elastic spheres. Therefore, we conclude that the large difference in stickiness between CO and HO ice particles would mainly originate from the difference in the strength of viscoelastic dissipation, which is controlled by the viscoelastic relaxation time.
15 pages, 7 figures. Accepted for publication in ApJ
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