Signatures of massive collisions in debris discs
Quentin Kral, Philippe Thebault, Jean-Charles Augereau, Anthony, Boccaletti, Sebastien Charnoz

TL;DR
This study models the aftermath of massive collisions in debris discs, revealing their observable signatures and evolution, using a fully self-consistent dynamical and collisional simulation approach.
Contribution
First comprehensive self-consistent model of debris disc aftermath from massive breakups, coupling dynamics and collisions with observational predictions.
Findings
Asymmetric dust structures homogenize in a few 10^5 years
Luminosity excess detectable for about 10^6 years
Synthetic images show observable asymmetries at 10 pc
Abstract
Violent stochastic collisional events have been invoked as a possible explanation for some debris discs displaying pronounced asymmetries or having a great luminosity excess. So far, no thorough modelling of the consequences of such events has been carried out, mainly because of the extreme numerical challenge of coupling the dynamical and collisional evolution of dust. We perform the first fully self-consistent modelling of the aftermath of massive breakups in debris discs. We follow the collisional and dynamical evolution of dust released after the breakup of a Ceres-sized body at 6 AU from its central star. We investigate the duration, magnitude and spatial structure of the signature left by such a violent event, as well as its observational detectability. We use the recently developed LIDT-DD code (Kral et al., 2013), which handles the coupled collisional and dynamical evolution…
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