English

Scaling laws for rockfall impact fragmentation emerging from diverse lithologies

Geophysics 2026-02-04 v1

Abstract

Impact-induced fragmentation is a fundamental dissipative process in geosciences, yet its stochastic nature makes predicting debris evolution a persistent challenge. Here, we introduce a discrete element framework to resolve fragmentation mechanics across a diverse lithological spectrum, from high-strength siliciclastic units to massive carbonates, validated against high-resolution field data from documented rockfall events. Our results reveal that, despite the inherent randomness of impact dynamics, fragment size distributions consistently follow a universal Weibull scaling law, independent of lithology or initial kinetic energy. By applying a relative breakage index, we demonstrate a remarkable collapse of fragmentation data onto a single statistical signature, bridging the gap between grain-scale fracture and macroscopic debris evolution. We find that this Weibullian signature acts as a proxy for lithological sensitivity, reflecting distinct efficiencies in converting kinetic energy into new fracture surfaces. This framework explicitly resolves the energy partitioning between surviving blocks and comminuted debris, providing a robust predictive link between impact mechanics and structural resilience. From an engineering perspective, our findings enable a shift from idealised single-block impact assumptions toward a realistic assessment of distributed energy in fragmented particle clouds, offering a physical basis for optimising protective galleries and hazard mitigation strategies in complex mountainous terrains.

Keywords

Cite

@article{arxiv.2602.03360,
  title  = {Scaling laws for rockfall impact fragmentation emerging from diverse lithologies},
  author = {Alvaro Vergara and Sergio Palma and Raul Fuentes},
  journal= {arXiv preprint arXiv:2602.03360},
  year   = {2026}
}

Comments

16 pages

R2 v1 2026-07-01T09:33:53.757Z