Design of a novel procedure for the optimization of the mechanical performances of 3D printed scaffolds for bone tissue engineering combining CAD, Taguchi method and FEA.


Journal

Medical engineering & physics
ISSN: 1873-4030
Titre abrégé: Med Eng Phys
Pays: England
ID NLM: 9422753

Informations de publication

Date de publication:
07 2019
Historique:
received: 22 02 2018
revised: 11 03 2019
accepted: 28 04 2019
pubmed: 19 5 2019
medline: 12 3 2020
entrez: 19 5 2019
Statut: ppublish

Résumé

In order to increase manufacturing and experimental efficiency, a certain degree of control over design performances before realization phase is recommended. In this context, this paper presents an integrated procedure to design 3D scaffolds for bone tissue engineering. The procedure required a combination of Computer Aided Design (CAD), Finite Element Analysis (FEA), and Design methodologies Of Experiments (DOE), firstly to understand the influence of the design parameters, and then to control them. Based on inputs from the literature and limitations imposed by the chosen manufacturing process (Precision Extrusion Deposition), 36 scaffold architectures have been drawn. The porosity of each scaffold has been calculated with CAD. Thereafter, a generic scaffold material was considered and its variable parameters were combined with the geometrical ones according to the Taguchi method, i.e. a DOE method. The compressive response of those principal combinations was simulated by FEA, and the influence of each design parameter on the scaffold compressive behaviour was clarified. Finally, a regression model was obtained correlating the scaffold's mechanical performances to its geometrical and material parameters. This model has been applied to a novel composite material made of polycaprolactone and innovative bioactive glass. By setting specific porosity (50%) and stiffness (0.05 GPa) suitable for trabecular bone substitutes, the model selected 4 of the 36 initial scaffold architectures. Only these 4 more promising geometries will be realized and physically tested for advanced indications on compressive strength and biocompatibility.

Identifiants

pubmed: 31101484
pii: S1350-4533(19)30077-3
doi: 10.1016/j.medengphy.2019.04.009
pii:
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

92-99

Informations de copyright

Copyright © 2019. Published by Elsevier Ltd.

Auteurs

Gregorio Marchiori (G)

IRCCS Istituto Ortopedico Rizzoli, Laboratorio di NanoBiotecnologie (NaBi), Via di Barbiano 10/2, 40136 Bologna, Italy. Electronic address: gregorio.marchiori@ior.it.

Matteo Berni (M)

IRCCS Istituto Ortopedico Rizzoli, Laboratorio di Biomeccanica e Innovazione Tecnologica, Via di Barbiano 10/2, 40136 Bologna, Italy; Department of Information Engineering, University of Brescia, Via Branze 38, 25123 Brescia, Italy.

Marco Boi (M)

IRCCS Istituto Ortopedico Rizzoli, Laboratorio di NanoBiotecnologie (NaBi), Via di Barbiano 10/2, 40136 Bologna, Italy.

Mauro Petretta (M)

IRCCS Istituto Ortopedico Rizzoli, Laboratorio RAMSES, Via di Barbiano 10/2, 40136 Bologna, Italy; RegenHu Ltd., Z.I. du vivier 22, CH-1690, Villaz St. Pierre, Switzerland.

Brunella Grigolo (B)

IRCCS Istituto Ortopedico Rizzoli, Laboratorio RAMSES, Via di Barbiano 10/2, 40136 Bologna, Italy.

Devis Bellucci (D)

Dipartimento di Ingegneria Enzo Ferrari, Unità di Ricerca del Consorzio Interuniversitario Nazionale per la Scienza e Tecnologia dei Materiali (INSTM), Università degli Studi di Modena e Reggio Emilia, Via P. Vivarelli 10, 41125 Modena, Italy.

Valeria Cannillo (V)

Dipartimento di Ingegneria Enzo Ferrari, Unità di Ricerca del Consorzio Interuniversitario Nazionale per la Scienza e Tecnologia dei Materiali (INSTM), Università degli Studi di Modena e Reggio Emilia, Via P. Vivarelli 10, 41125 Modena, Italy.

Chiara Garavelli (C)

Università di Bologna, DEI, Via Zamboni, 33, 40126 Bologna, Italy.

Michele Bianchi (M)

IRCCS Istituto Ortopedico Rizzoli, Laboratorio di NanoBiotecnologie (NaBi), Via di Barbiano 10/2, 40136 Bologna, Italy.

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