Fast and accurate quasi-atom method for simultaneous atomistic and continuum simulation of solids

Fuente: arXiv
Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Chuprov, Artem, Nuzhin, Egor E., Tsukanov, Alexey A., Brilliantov, Nikolay V.
Format: Preprint
Veröffentlicht: 2026
Schlagworte:
Online-Zugang:
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1866911450688126976
author Chuprov, Artem
Nuzhin, Egor E.
Tsukanov, Alexey A.
Brilliantov, Nikolay V.
author_facet Chuprov, Artem
Nuzhin, Egor E.
Tsukanov, Alexey A.
Brilliantov, Nikolay V.
contents We report a novel hybrid method of simultaneous atomistic simulation of solids in critical regions (contacts surfaces, cracks areas, etc.), along with continuum modeling of other parts. The continuum is treated in terms of quasi-atoms of different size, comprising composite medium. The parameters of interaction potential between the quasi-atoms are optimized to match elastic properties of the composite medium to those of the atomic one. The optimization method coincides conceptually with the online Machine Learning (ML) methods, making it computationally very efficient. Such an approach allows a straightforward application of standard software packages for molecular dynamics (MD), supplemented by the ML-based optimizer. The new method is applied to model systems with a simple, pairwise Lennard-Jones potential, as well with multi-body Tersoff potential, describing covalent bonds. Using LAMMPS software we simulate collision of particles of different size. Comparing simulation results, obtained by the novel method, with full-atomic simulations, we demonstrate its accuracy, validity and overwhelming superiority in computational speed. Furthermore, we compare our method with other hybrid methods, specifically, with the closest one -- AtC (Atomic to Continuum) method. We demonstrate a significant superiority of our approach in computational speed and implementation convenience. Finally, we discuss a possible extension of the method for modeling other phenomena.
format Preprint
id arxiv_https___arxiv_org_abs_2602_14867
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Fast and accurate quasi-atom method for simultaneous atomistic and continuum simulation of solids
Chuprov, Artem
Nuzhin, Egor E.
Tsukanov, Alexey A.
Brilliantov, Nikolay V.
Materials Science
Machine Learning
We report a novel hybrid method of simultaneous atomistic simulation of solids in critical regions (contacts surfaces, cracks areas, etc.), along with continuum modeling of other parts. The continuum is treated in terms of quasi-atoms of different size, comprising composite medium. The parameters of interaction potential between the quasi-atoms are optimized to match elastic properties of the composite medium to those of the atomic one. The optimization method coincides conceptually with the online Machine Learning (ML) methods, making it computationally very efficient. Such an approach allows a straightforward application of standard software packages for molecular dynamics (MD), supplemented by the ML-based optimizer. The new method is applied to model systems with a simple, pairwise Lennard-Jones potential, as well with multi-body Tersoff potential, describing covalent bonds. Using LAMMPS software we simulate collision of particles of different size. Comparing simulation results, obtained by the novel method, with full-atomic simulations, we demonstrate its accuracy, validity and overwhelming superiority in computational speed. Furthermore, we compare our method with other hybrid methods, specifically, with the closest one -- AtC (Atomic to Continuum) method. We demonstrate a significant superiority of our approach in computational speed and implementation convenience. Finally, we discuss a possible extension of the method for modeling other phenomena.
title Fast and accurate quasi-atom method for simultaneous atomistic and continuum simulation of solids
topic Materials Science
Machine Learning
url https://arxiv.org/abs/2602.14867