4.7 Article

Hybrid continuum-discrete simulation of granular impact dynamics

期刊

ACTA GEOTECHNICA
卷 17, 期 12, 页码 5597-5612

出版社

SPRINGER HEIDELBERG
DOI: 10.1007/s11440-022-01598-2

关键词

Continuum-discrete coupling; Discrete element method; Granular impact; Material point method; Solid-granular interaction

资金

  1. Research Grants Council of Hong Kong [17201419, 16212618]
  2. KAIST

向作者/读者索取更多资源

This article introduces a hybrid continuum-discrete approach for efficiently simulating granular impact dynamics. By enhancing the existing methods and introducing new components, the proposed approach can accurately reproduce various parameters of granular impact dynamics. Through experimental validation and parameter studies, key factors for successful simulation are identified.
Granular impact-the dynamic intrusion of solid objects into granular media-is widespread across scientific and engineering applications including geotechnics. Existing approaches to the simulation of granular impact dynamics have relied on either a purely discrete method or a purely continuum method. Neither of these methods, however, is deemed optimal from the computational perspective. Here, we introduce a hybrid continuum-discrete approach, built on the coupled material-point and discrete-element method (MP-DEM), for simulation of granular impact dynamics with unparalleled efficiency. To accommodate highly complex solid-granular interactions, we enhance the existing MP-DEM formulation with three new ingredients: (i) a robust contact algorithm that couples the continuum and discrete parts without any interpenetration under extreme impact loads, (ii) large deformation kinematics employing multiplicative elastoplasticity, and (iii) a trans-phase constitutive relation capturing gasification of granular media. For validation, we also generate experimental data through laboratory measurement of the impact dynamics of solid spheres dropped onto dry sand. Simulation of the experiments shows that the proposed approach can well reproduce granular impact dynamics in terms of impact forces, intrusion depths, and splash patterns. Furthermore, through parameter studies on material properties, model formulations, and numerical schemes, we identify key factors for successful continuum-discrete simulation of granular impact dynamics.

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