Title of article
Optimization of scaffold design for bone tissue engineering: A computational and experimental study
Author/Authors
Dias، نويسنده , , Marta R. and Guedes، نويسنده , , José M. and Flanagan، نويسنده , , Colleen L. and Hollister، نويسنده , , Scott J. and Fernandes، نويسنده , , Paulo R.، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2014
Pages
10
From page
448
To page
457
Abstract
In bone tissue engineering, the scaffold has not only to allow the diffusion of cells, nutrients and oxygen but also provide adequate mechanical support. One way to ensure the scaffold has the right properties is to use computational tools to design such a scaffold coupled with additive manufacturing to build the scaffolds to the resulting optimized design specifications. In this study a topology optimization algorithm is proposed as a technique to design scaffolds that meet specific requirements for mass transport and mechanical load bearing. Several micro-structures obtained computationally are presented. Designed scaffolds were then built using selective laser sintering and the actual features of the fabricated scaffolds were measured and compared to the designed values. It was possible to obtain scaffolds with an internal geometry that reasonably matched the computational design (within 14% of porosity target, 40% for strut size and 55% for throat size in the building direction and 15% for strut size and 17% for throat size perpendicular to the building direction). These results support the use of these kind of computational algorithms to design optimized scaffolds with specific target properties and confirm the value of these techniques for bone tissue engineering.
Keywords
homogenization , Bone tissue engineering , Selective laser sintering , Topology optimization
Journal title
Medical Engineering and Physics
Serial Year
2014
Journal title
Medical Engineering and Physics
Record number
1732530
Link To Document