Logo del repository
  1. Home
 
Opzioni

Crystal plasticity model for cyclic hardening-softening of 316L steel produced by laser-powder bed fusion including the role of sub-grain structures

Pelegatti M.
•
Salvati E.
•
Grilli N.
2025
  • journal article

Periodico
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING
Abstract
Recent literature has emphasised the need to assess the process-structure-properties of additively manufactured (AM) metals to exploit their full capability. Many studies focused on the static mechanical properties of AM materials and their relationship with their microstructure, whereas the cyclic elastoplastic response was rarely addressed. In the present work, a crystal plasticity (CP) model is proposed to model the macroscopic stress response during cyclic strain in a 316L steel produced by laser-powder bed fusion (L-PBF). To accurately capture cyclic hardening-softening of the material, the proposed model includes essential microstructural features – such as crystallographic texture, AM-induced intragranular cellular structure and persistent slip bands (PSBs) – in a dislocation-based framework. The model parameters are estimated from microstructural observations by the authors' experimental investigation and literature. After experimental validation of the model's cyclic response at 0.4 % strain amplitude, parametric analyses elucidate interrelationships between microstructure and cyclic response. Simulations, supported by experiments, suggest that the AM cellular structure drives the dislocation evolution. The accumulation of dislocations rules the initial moderate cyclic hardening, while the depletion of dislocations dominates the following early cyclic softening due to the formation of PSBs. The proposed model can also serve as a tool to tune the cyclic response by adjusting the AM cell size and initial dislocation density, thus controlling the cyclic hardening and hardening-softening transition. Given the relationship between cyclic softening, PSBs and fatigue crack nucleation, the model can be extended to assess the fatigue damage during the early cyclic response of AM metals.
DOI
10.1016/j.msea.2025.149083
WOS
WOS:001570467100006
Archivio
https://hdl.handle.net/11390/1314404
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-105015139406
https://ricerca.unityfvg.it/handle/11390/1314404
Diritti
open access
license:creative commons
license uri:http://creativecommons.org/licenses/by-nc-nd/4.0/
Soggetti
  • 316L stainless steel

  • Crystal plasticity

  • Cyclic hardening-soft...

  • Laser-powder bed fusi...

  • Persistent slip band

  • Solidification cellul...

google-scholar
Get Involved!
  • Source Code
  • Documentation
  • Slack Channel
Make it your own

DSpace-CRIS can be extensively configured to meet your needs. Decide which information need to be collected and available with fine-grained security. Start updating the theme to match your nstitution's web identity.

Need professional help?

The original creators of DSpace-CRIS at 4Science can take your project to the next level, get in touch!

Realizzato con Software DSpace-CRIS - Estensione mantenuta e ottimizzata da 4Science

  • Impostazioni dei cookie
  • Informativa sulla privacy
  • Accordo con l'utente finale
  • Invia il tuo Feedback