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Phase field crystal modeling of subgrain coarsening

Hallberg, Håkan LU orcid ; Jensen, Dorte Juul and Yu, Tianbo (2026) In Acta Materialia 320.
Abstract

Recovery of plastically deformed metals involves several stages of substructure evolution during which dislocation entanglements and networks become increasingly organized, thereby lowering the stored energy in the material. Central to recovery is the formation and evolution of subgrains, which is also recognized as a recrystallization precursor. In this paper, subgrain coarsening is investigated by means of phase field crystal (PFC) simulations. PFC enables tracking subgrain evolution with atom-scale spatial resolution and over extended time scales, beyond the reach of alternative methods such as molecular dynamics simulations. Different subgrain models are devised to investigate various relevant conditions for subgrain coarsening,... (More)

Recovery of plastically deformed metals involves several stages of substructure evolution during which dislocation entanglements and networks become increasingly organized, thereby lowering the stored energy in the material. Central to recovery is the formation and evolution of subgrains, which is also recognized as a recrystallization precursor. In this paper, subgrain coarsening is investigated by means of phase field crystal (PFC) simulations. PFC enables tracking subgrain evolution with atom-scale spatial resolution and over extended time scales, beyond the reach of alternative methods such as molecular dynamics simulations. Different subgrain models are devised to investigate various relevant conditions for subgrain coarsening, both with and without the presence of high-angle grain boundaries (HAGBs). The results show that subgrain coarsening initially takes place by sub-boundary dissolution and rearrangement. At later stages, the coarsening is dominated by subgrain boundary migration—somewhat similar to normal grain growth—but with instances of subgrain coalescence. Lattice rotation within the subgrain network is demonstrated to occur gradually under the formation of intra-subgrain orientation gradients. The results also reveal that a presence of HAGBs is not a prerequisite for subgrain coarsening, even if involving coalescence, contrary to the classical assumption. Subgrain coarsening is, in fact, shown to proceed more efficiently without any HAGB influence in all of the investigated scenarios.

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Contribution to journal
publication status
published
subject
keywords
Grain boundary, Grain boundary migration, Phase field crystal, Subgrain, Subgrain coalescence, Subgrain coarsening
in
Acta Materialia
volume
320
article number
122685
publisher
Elsevier
external identifiers
  • scopus:105048964219
ISSN
1359-6454
DOI
10.1016/j.actamat.2026.122685
language
English
LU publication?
yes
id
4feb9817-2111-4378-bfa8-63d98c3916ff
date added to LUP
2026-09-10 08:07:36
date last changed
2026-09-10 08:28:59
@article{4feb9817-2111-4378-bfa8-63d98c3916ff,
  abstract     = {{<p>Recovery of plastically deformed metals involves several stages of substructure evolution during which dislocation entanglements and networks become increasingly organized, thereby lowering the stored energy in the material. Central to recovery is the formation and evolution of subgrains, which is also recognized as a recrystallization precursor. In this paper, subgrain coarsening is investigated by means of phase field crystal (PFC) simulations. PFC enables tracking subgrain evolution with atom-scale spatial resolution and over extended time scales, beyond the reach of alternative methods such as molecular dynamics simulations. Different subgrain models are devised to investigate various relevant conditions for subgrain coarsening, both with and without the presence of high-angle grain boundaries (HAGBs). The results show that subgrain coarsening initially takes place by sub-boundary dissolution and rearrangement. At later stages, the coarsening is dominated by subgrain boundary migration—somewhat similar to normal grain growth—but with instances of subgrain coalescence. Lattice rotation within the subgrain network is demonstrated to occur gradually under the formation of intra-subgrain orientation gradients. The results also reveal that a presence of HAGBs is not a prerequisite for subgrain coarsening, even if involving coalescence, contrary to the classical assumption. Subgrain coarsening is, in fact, shown to proceed more efficiently without any HAGB influence in all of the investigated scenarios.</p>}},
  author       = {{Hallberg, Håkan and Jensen, Dorte Juul and Yu, Tianbo}},
  issn         = {{1359-6454}},
  keywords     = {{Grain boundary; Grain boundary migration; Phase field crystal; Subgrain; Subgrain coalescence; Subgrain coarsening}},
  language     = {{eng}},
  month        = {{11}},
  publisher    = {{Elsevier}},
  series       = {{Acta Materialia}},
  title        = {{Phase field crystal modeling of subgrain coarsening}},
  url          = {{http://dx.doi.org/10.1016/j.actamat.2026.122685}},
  doi          = {{10.1016/j.actamat.2026.122685}},
  volume       = {{320}},
  year         = {{2026}},
}