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March 26, 2026Keisan Rikigaku Koenkai koen ronbunshu/Keisan Rikigaku Kouenkai kouen rombunshuu0 citationsOpen Access

A numerical investigation on effectiveness of kinetic impact deflection of near-Earth asteroids with material point method

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JLJinguang LiYQYuling QINPXPing Xin

Key Points

  • The aim is to evaluate the effectiveness of kinetic impact deflection methods on near-Earth asteroids using numerical simulations.
  • Utilized the Material Point Method for numerical simulations of asteroid deflection.
  • Incorporated elastic-plastic material behavior and granular flow in simulations.
  • Conducted parametric studies to analyze momentum transfer efficiency under varying conditions.
  • Simulation results align with hypervelocity impact experiments for crater scaling laws.
  • Identified key factors affecting deflection efficiency of different types of asteroids.
  • Demonstrated the ability to resolve complex fragmentation processes in simulations.

Abstract

Near-Earth asteroids (NEAs) pose a potential threat to human life and property due to their risk of collision with Earth, making NEA defense a longstanding focus of research. Kinetic impact deflection, exemplified by NASA's DART mission, has emerged as a promising method, yet its effectiveness remains sensitive to material properties and impact parameters. This study employs the Material Point Method (MPM), an integrated Lagrangian-Eulerian computational framework capable of resolving large deformations and multi-phase flow, to numerically simulate the deflection efficiency of idealized asteroids under kinetic impacts. MPM models incorporate elastic-plastic material behavior and granular flow to capture large deformations and fragmentation processes, and characterize energy dissipation in porous and solid targets. MPM results align well with hypervelocity impact experiments for crater scaling laws, validating the approach. Parametric studies are then conducted to investigate the momentum transfer efficiency for different types of asteroids, varying a range of asteroid properties and impact conditions. The findings highlight MPM's capability in resolving complex fragmentation physics, providing actionable insights for optimizing impactor design in future planetary defense missions.

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Cite This Study

Li et al. (2025) studied this question.

synapsesocial.com/papers/69c4cc85fdc3bde448917dddhttps://doi.org/10.1299/jsmecmd.2025.38.os20-3
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Assessing the influence of asteroid composition and structure on kinetic impact deflection efficiency: an MPM approach2024
  2. 2Analysis of on-orbit test missions for asteroid kinetic impact2026 · 1 citations
  3. 3Quantifying the effect of asteroid structure on hypervelocity impact outcomes with the Material Point Method2024
  4. 4Momentum Transfer Coefficient Constraints for the 2024 PDC25 Hypothetical Asteroid Impact Scenario2026
  5. 5Comparison of Planetary Defense Deflection Methods2024 · 3 citations