Finite element method simulation for the prediction of mechanical properties of three-dimensional periodic bioactive glass scaffolds

被引:3
作者
Deliormanli, Aylin M. [1 ,2 ]
Deliormanli, Ahmet H. [3 ]
机构
[1] Manisa Celal Bayar Univ, Dept Met & Mat Engn, TR-45140 Manisa, Turkey
[2] Missouri Univ Sci & Technol, Dept Mat Sci & Engn, Rolla, MO 65409 USA
[3] Dokuz Eylul Univ, Dept Min Engn, Tinaztepe Campus, TR-35397 Izmir, Turkey
关键词
Bioactive glass; Scaffold; Mechanical properties; FEM; TISSUE; FABRICATION; DESIGN; MODELS;
D O I
10.1007/s41779-017-0037-7
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The desired mechanical properties of porous tissue engineering scaffolds may differ depending on the clinical applications. Therefore, it is crucial to be able to control these properties for specific cases. In the current study, cube shape, porous, silicate-based (13-93) bioactive glass scaffolds were fabricated by robotic deposition method. Scaffolds were prepared layer by layer to form constructs with a grid-like microstructure. After binder burnout, the constructs were sintered for 1 h at 700 degrees C to produce scaffolds consisting of dense bioactive glass struts (similar to 280 +/- 20 aem in diameter) at different pore widths (300 +/- 50, 600 +/- 25, and 900 +/- 50 aem). The mechanical response of the scaffolds in compression was measured experimentally. The stress analysis of the complete scaffolds with varying pore width and layer spacing parameters has been performed by finite element method (FEM) under compression to investigate the state of stress fields created within the scaffolds. Such an analysis can be used to vary several geometrical parameters and to choose the most suitable ones for the replacement of natural tissues. The compressive strengths predicted by the FEM simulations were successfully validated by comparison with experimental uniaxial compression test data, justifying the suitability of the present approach for the optimization purposes.
引用
收藏
页码:299 / 307
页数:9
相关论文
共 39 条
[1]   Bioceramics and Scaffolds: A winning Combination for Tissue engineering [J].
Baino, Francesco ;
Novajra, Giorgia ;
Vitale-Brovarone, Chiara .
FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2015, 3
[2]   Finite Element Method (FEM), Mechanobiology and Biomimetic Scaffolds in Bone Tissue Engineering [J].
Boccaccio, A. ;
Ballini, A. ;
Pappalettere, C. ;
Tullo, D. ;
Cantore, S. ;
Desiate, A. .
INTERNATIONAL JOURNAL OF BIOLOGICAL SCIENCES, 2011, 7 (01) :112-132
[3]  
Brink M, 1997, J BIOMED MATER RES, V37, P114, DOI 10.1002/(SICI)1097-4636(199710)37:1<114::AID-JBM14>3.0.CO
[4]  
2-G
[5]   Simulation of tissue differentiation in a scaffold as a function of porosity, Young's modulus and dissolution rate: Application of mechanobiological models in tissue engineering [J].
Byrne, Damien P. ;
Lacroix, Damien ;
Planell, Josep A. ;
Kelly, Daniel J. ;
Prendergast, Patrick J. .
BIOMATERIALS, 2007, 28 (36) :5544-5554
[6]   Scaffolding in tissue engineering: general approaches and tissue-specific considerations [J].
Chan, B. P. ;
Leong, K. W. .
EUROPEAN SPINE JOURNAL, 2008, 17 (Suppl 4) :S467-S479
[7]   Direct freeform fabrication of seeded hydrogels in arbitrary geometries [J].
Cohen, Daniel L. ;
Malone, Evan ;
Lipson, Hod ;
Bonassar, Lawrence J. .
TISSUE ENGINEERING, 2006, 12 (05) :1325-1335
[8]   Direct-write assembly of silicate and borate bioactive glass scaffolds for bone repair [J].
Deliormanli, Aylin M. ;
Rahaman, Mohamed N. .
JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2012, 32 (14) :3637-3646
[9]  
Devi G.A.V., 2010, INT J ENG SCI TECHNO, V2, P2483
[10]  
Dobrzanski L.A., 2010, J ACHIEVEMENTS MAT M, V42, P134