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Scaffold library for tissue engineering: A geometric evaluation
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Metadata
Document Title
Scaffold library for tissue engineering: A geometric evaluation
Author
Chantarapanich N., Puttawibul P., Sucharitpwatskul S., Jeamwatthanachai P., Inglam S., Sitthiseripratip K.
Name from Authors Collection
Affiliations
Institute of Biomedical Engineering, Faculty of Medicine, Prince of Songkla University, Songkhla 90110, Thailand; National Metal and Materials Technology Center (MTEC), National Science and Technology Development Agency, 114 Thailand Science Park, Phahonyothin Road, Klong Luang, Pathumthani 12120, Thailand; Faculty of Dentistry, Thammasat University, Pathumthani 12120, Thailand
Type
Article
Source Title
Computational and Mathematical Methods in Medicine
ISSN
1748670X
Year
2012
Volume
2012
Open Access
Gold, Green
Publisher
Hindawi Limited
DOI
10.1155/2012/407805
Abstract
Tissue engineering scaffold is a biological substitute that aims to restore, to maintain, or to improve tissue functions. Currently available manufacturing technology, that is, additive manufacturing is essentially applied to fabricate the scaffold according to the predefined computer aided design (CAD) model. To develop scaffold CAD libraries, the polyhedrons could be used in the scaffold libraries development. In this present study, one hundred and nineteen polyhedron models were evaluated according to the established criteria. The proposed criteria included considerations on geometry, manufacturing feasibility, and mechanical strength of these polyhedrons. CAD and finite element (FE) method were employed as tools in evaluation. The result of evaluation revealed that the close-cellular scaffold included truncated octahedron, rhombicuboctahedron, and rhombitruncated cuboctahedron. In addition, the suitable polyhedrons for using as open-cellular scaffold libraries included hexahedron, truncated octahedron, truncated hexahedron, cuboctahedron, rhombicuboctahedron, and rhombitruncated cuboctahedron. However, not all pore size to beam thickness ratios (PO: BT) were good for making the open-cellular scaffold. The PO: BT ratio of each library, generating the enclosed pore inside the scaffold, was excluded to avoid the impossibility of material removal after the fabrication. The close-cellular libraries presented the constant porosity which is irrespective to the different pore sizes. The relationship between PO: BT ratio and porosity of open-cellular scaffold libraries was displayed in the form of Logistic Power function. The possibility of merging two different types of libraries to produce the composite structure was geometrically evaluated in terms of the intersection index and was mechanically evaluated by means of FE analysis to observe the stress level. The couples of polyhedrons presenting low intersection index and high stress level were excluded. Good couples for producing the reinforced scaffold were hexahedron-truncated hexahedron and cuboctahedron-rhombitruncated cuboctahedron. Copyright © 2012 Nattapon Chantarapanich et al.
License
CC BY
Rights
Author
Publication Source
Scopus