Infiltration effects on a two-dimensional molecular dynamics model of landslides
Gianluca Martelloni, Franco Bagnoli

TL;DR
This paper introduces a 2D molecular dynamics model to simulate rainfall-triggered landslides, incorporating pore pressure, viscosity, and particle interactions to better understand landslide behavior.
Contribution
The study presents a novel 2D MD-based computational model for landslides that includes pore pressure effects and viscosity, advancing previous simpler models.
Findings
Model reproduces realistic landslide dynamics
Incorporates pore pressure increase due to rainfall
Demonstrates potential for improved landslide prediction
Abstract
In this paper we propose a two-dimensional (2D) computational model, based on a molecular dynamics (MD) approach, for deep landslides triggered by rainfall. Our model is based on interacting particles or grains and describes the behavior of a fictitious granular material along a slope consisting of a vertical section, i.e. with a wide thickness. The triggering of the landslide is caused by the passing of two conditions: a threshold speed and a condition on the static friction of the particles, the latter based on the Mohr-Coulomb failure criterion (Coulomb 1776; Mohr 1914). The inter-particle interactions are through a potential that, in the absence of suitable experimental data and due to the arbitrariness of the grain dimension is modeled by means of a potential similar to the Lennard-Jones one (Lennard-Jones 1924), i.e., with an attractive and a repulsive part. For the updating of…
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Taxonomy
TopicsLandslides and related hazards · Soil and Unsaturated Flow · Granular flow and fluidized beds
