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Photometric modeling of ejecta for evaluating defensive Kinetic impacts on asteroids

  • Xiao Yu Sun
  • , Zhi Jun Song
  • , Xiao Tao Guo
  • , Xiao Jing Zhang
  • , Yuri Skorov
  • , Yang Yu*
  • , He Zhang
  • *Corresponding author for this work
  • Beihang University
  • State Key Laboratory for Space System Operation and Control
  • China Academy of Aerospace System and Innovation
  • Max Planck Institute for Solar System Research
  • China Aerospace Science and Technology Corporation

Research output: Contribution to journalArticlepeer-review

Abstract

Kinetic impact is the most practical planetary-defense technique, with momentum-transfer efficiency central to deflection design. We present a Monte Carlo photometric framework that couples ejecta sampling, dynamical evolution, and image synthesis to compare directly with HST, LICIACube, ground-based and Lucy observations of the DART impact. Decomposing ejecta into (1) a high-velocity (~1600 m/s) plume exhibiting Na/K resonance, (2) a low-velocity (~1 m/s) conical component shaped by binary gravity and solar radiation pressure, and (3) meter-scale boulders, we quantify each component’s mass and momentum. Fitting photometric decay curves and morphological evolution yields size–velocity distributions and, via scaling laws, estimates of Dimorphos’ bulk density, cratering parameters, and cohesive strength that agree with dynamical constraints. Photometric ejecta modeling therefore provides a robust route to constrain momentum enhancement and target properties, improving predictive capability for kinetic-deflection missions.

Original languageEnglish
Pages (from-to)205-221
Number of pages17
JournalEarth and Planetary Physics
Volume10
Issue number1
DOIs
StatePublished - Jan 2026

Keywords

  • DART mission
  • Kinetic impact
  • ejecta dynamics
  • photometric modeling

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