Investigation into the Hybrid Production of a Superelastic Shape Memory Alloy with Additively Manufactured Structures for Medical Implants.

NiTi additive manufacturing application implant medical shape memory alloys (SMA) superelasticity

Journal

Materials (Basel, Switzerland)
ISSN: 1996-1944
Titre abrégé: Materials (Basel)
Pays: Switzerland
ID NLM: 101555929

Informations de publication

Date de publication:
05 Jun 2021
Historique:
received: 20 05 2021
revised: 31 05 2021
accepted: 01 06 2021
entrez: 2 7 2021
pubmed: 3 7 2021
medline: 3 7 2021
Statut: epublish

Résumé

The demographic change in and the higher incidence of degenerative bone disease have resulted in an increase in the number of patients with osteoporotic bone tissue causing. amongst other issues, implant loosening. Revision surgery to treat and correct the loosenings should be avoided, because of the additional patient stress and high treatment costs. Shape memory alloys (SMA) can help to increase the anchorage stability of implants due to their superelastic behavior. The present study investigates the potential of hybridizing NiTi SMA sheets with additively manufactured Ti6Al4V anchoring structures using laser powder bed fusion (LPBF) technology to functionalize a pedicle screw. Different scanning strategies are evaluated, aiming for minimized warpage of the NiTi SMA sheet. For biomechanical tests, functional samples were manufactured. A good connection between the additively manufactured Ti6Al4V anchoring structures and NiTi SMA substrate could be observed though crack formation occurring at the transition area between the two materials. These cracks do not propagate during biomechanical testing, nor do they lead to flaking structures. In summary, the hybrid manufacturing of a NiTi SMA substrate with additively manufactured Ti6Al4V structures is suitable for medical implants.

Identifiants

pubmed: 34198784
pii: ma14113098
doi: 10.3390/ma14113098
pmc: PMC8200991
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : Bundesministerium für Bildung und Forschung
ID : 036ZZ1026D

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Auteurs

Isabell Hamann (I)

Fraunhofer Institute for Machine Tools and Forming Technology IWU, 01187 Dresden, Germany.
Asklepios Orthopädische Klinik Hohwald, 01844 Neustadt in Sachsen, Germany.

Felix Gebhardt (F)

Fraunhofer Institute for Machine Tools and Forming Technology IWU, 01187 Dresden, Germany.

Manuel Eisenhut (M)

Fraunhofer Institute for Machine Tools and Forming Technology IWU, 01187 Dresden, Germany.

Peter Koch (P)

Chair of Engineering Design and CAD, Dresden University of Technology, 01069 Dresden, Germany.

Juliane Thielsch (J)

Fraunhofer Institute for Machine Tools and Forming Technology IWU, 01187 Dresden, Germany.

Christin Rotsch (C)

Fraunhofer Institute for Machine Tools and Forming Technology IWU, 01187 Dresden, Germany.

Welf-Guntram Drossel (WG)

Fraunhofer Institute for Machine Tools and Forming Technology IWU, 01187 Dresden, Germany.
Professorship Adaptronics and Lightweight Design in Production, Chemnitz University of Technology, 09107 Chemnitz, Germany.

Christoph-Eckhard Heyde (CE)

Medical Center, Orthopaedic, Trauma and Plastic Surgery Clinic, University of Leipzig, 04103 Leipzig, Germany.

Mario Leimert (M)

Sächsische Schweiz Kliniken GmbH, 01855 Sebnitz, Germany.

Classifications MeSH