Skip to Main Content (Press Enter)

Logo UNIMORE
  • ×
  • Home
  • Corsi
  • Insegnamenti
  • Professioni
  • Persone
  • Pubblicazioni
  • Strutture
  • Terza Missione
  • Attività
  • Competenze

UNI-FIND
Logo UNIMORE

|

UNI-FIND

unimore.it
  • ×
  • Home
  • Corsi
  • Insegnamenti
  • Professioni
  • Persone
  • Pubblicazioni
  • Strutture
  • Terza Missione
  • Attività
  • Competenze
  1. Pubblicazioni

Laser Powder Bed Fusion: Tailoring the microstructure of alloys for biomedical applications

Contributo in Atti di convegno
Data di Pubblicazione:
2019
Citazione:
Laser Powder Bed Fusion: Tailoring the microstructure of alloys for biomedical applications / Santecchia, E.; Mengucci, P.; Gatto, A.; Bassoli, E.; Denti, L.; Rutkowski, B.; Barucca, G.. - In: MATERIALS TODAY: PROCEEDINGS. - ISSN 2214-7853. - 19:Spec. Iss. 1(2019), pp. 24-32. ( 15th International Conferences and Exhibition on Nanosciences and Nanotechnologies (NN) / 11th International Symposium on Flexible Organic Electronics (ISFOE) Thessaloniki, GREECE JUN 30-JUL 07, 2018) [10.1016/j.matpr.2019.07.652].
Abstract:
Additive manufacturing (AM) is particularly attractive for biomedical applications, where complex geometries and a high degree of individualization are required. Laser powder bed fusion (LPBF) is an AM technology exploiting the action of a solid-state laser to locally melt a metal powder according to a computer aided design (CAD) model. In the present study, the EOS Cobalt Chrome SP2 (Co-Cr-Mo-W) and Ti64 (Ti6Al4V) powders were sintered by the system equipped with a Yb fiber laser. During LPBF, the Co-Cr-Mo-W metal powder undergoes total melting followed by rapid cooling, giving rise to athermal martensitic phase transformation from the high-temperature ? (fcc) phase to the low-temperature ? (hcp) phase. This produces an intricate network of thin ?-lamellae inside the ? phase matrix. After the firing cycle this structure is maintained, and a massive presence of coarse precipitates is also observed. Owing to the rapid cooling taking place during LPBF, in Ti6Al4V sintered samples only the acicular martensitic a' phase is present. The firing cycle induces the ß phase formation at the a plate boundaries and this microstructure leads to reduced values of strength, with respect to those of the as-sintered samples. The highlighted behaviors show that by tuning the post-production heat treatments it is possible to tailor the microstructure and the mechanical properties.
Tipologia CRIS:
Relazione in Atti di Convegno
Keywords:
Biomedical alloy; Co-Cr-Mo-W; Heat treatment, STEM, TEM; Microstructure; Powder bed fusion; Ti-6Al-4V
Elenco autori:
Santecchia, E.; Mengucci, P.; Gatto, A.; Bassoli, E.; Denti, L.; Rutkowski, B.; Barucca, G.
Autori di Ateneo:
BASSOLI Elena
DENTI Lucia
GATTO Andrea
Link alla scheda completa:
https://iris.unimore.it/handle/11380/1286802
Titolo del libro:
International Conference on Recent Trends in Nanomaterials for Energy, Environmental and Engineering Applications
Pubblicato in:
MATERIALS TODAY: PROCEEDINGS
Journal
  • Utilizzo dei cookie

Realizzato con VIVO | Designed by Cineca | 26.5.1.0