3D printing-assisted design of scaffold structures

被引:54
作者
Kantaros, Antreas [1 ]
Chatzidai, Nikoleta [1 ]
Karalekas, Dimitris [1 ]
机构
[1] Univ Piraeus, Lab Adv Mfg Technol & Testing, Piraeus 18534, Greece
关键词
3D printing; Fused deposition modeling; Scaffold design; Porosity; Finite element analysis; Mechanical behavior; MECHANICAL-PROPERTIES; POROUS TITANIUM; TISSUE; BONE; HYDROXYAPATITE; ARCHITECTURE; FABRICATION; BIOREACTORS; LIBRARY; FLUID;
D O I
10.1007/s00170-015-7386-6
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Rapid prototyping has emerged as a very auspicious manufacturing method of fabricating tissue engineering scaffolds. Using a 3D CAD design, the 3D printer features the ability of producing the predetermined forms and structures with very high level of accuracy and repeatability. Additionally, the 3D-printed tissue scaffolds are meant to act as replaceable constructs in a very demanding environment. The challenging conditions of the human body set high criteria demands that the scaffold should be capable of fulfilling. One of the most crucial demands is the capability of the scaffold to exhibit the desired mechanical properties depending on the loading conditions that it must cope up against. A mechanical property investigation of different scaffold designs can provide crucial information concerning this key factor in the criteria profile of a functional scaffold design. The target of the present study is to compare the mechanical properties of different scaffold designs that, however, feature same porosity and similar dimensions. Compressive strength testing was conducted in three 3D-printed scaffold designs. Also, a finite element study was conducted, simulating the compressive strength testing. The results of the compression testing experiment were found to be in good agreement with the computational analysis results. Furthermore, a computational fluid dynamic (CFD) simulation was conducted in order to look into the fluid shear stress inside the scaffold. Finally, the properties of the biomaterial hydroxyapatite were used in order to investigate the compressive and shear mechanical behavior of the aforementioned designs by conducting a finite element study.
引用
收藏
页码:559 / 571
页数:13
相关论文
共 35 条
[1]   Numerical simulations of bioextruded polymer scaffolds for tissue engineering applications [J].
Almeida, Henrique A. ;
Bartolo, Paulo J. .
POLYMER INTERNATIONAL, 2013, 62 (11) :1544-1552
[2]   Effect of pore geometry and loading direction on deformation mechanism of rapid prototyped scaffolds [J].
Amirkhani, Soodeh ;
Bagheri, Reza ;
Yazdi, Alireza Zehtab .
ACTA MATERIALIA, 2012, 60 (6-7) :2778-2789
[3]  
[Anonymous], 1997, Cellular solid structure and properties
[4]   A Porous Hydroxyapatite/Gelatin Nanocomposite Scaffold for Bone Tissue Repair: In Vitro and In Vivo Evaluation [J].
Azami, Mahmoud ;
Tavakol, Shima ;
Samadikuchaksaraei, Ali ;
Hashjin, Mehran Solati ;
Baheiraei, Nafiseh ;
Kamali, Mehdi ;
Nourani, Mohammad Reza .
JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 2012, 23 (18) :2353-2368
[5]   Preparation of a biomimetic nanocomposite scaffold for bone tissue engineering via mineralization of gelatin hydrogel and study of mineral transformation in simulated body fluid [J].
Azami, Mahmoud ;
Moosavifar, Mir Javad ;
Baheiraei, Nafiseh ;
Moztarzadeh, Fathollah ;
Ai, Jafar .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2012, 100A (05) :1347-1355
[6]   Experimental evaluation of hardening strains in a bioceramic material using an embedded optical sensor [J].
Bimis, Alexis ;
Karalekas, Dimitris .
MECCANICA, 2015, 50 (02) :541-547
[7]   Prediction of the micro-fluid dynamic environment imposed to three-dimensional engineered cell systems in bioreactors [J].
Boschetti, F ;
Raimondi, MT ;
Migliavacca, F ;
Dubini, G .
JOURNAL OF BIOMECHANICS, 2006, 39 (03) :418-425
[8]   Mechanical characterization of brushite and hydroxyapatite cements [J].
Charrière, E ;
Terrazzoni, S ;
Pittet, C ;
Mordasini, P ;
Dutoit, M ;
Lemaître, J ;
Zysset, P .
BIOMATERIALS, 2001, 22 (21) :2937-2945
[9]   Development of a tissue engineering scaffold structure library for rapid prototyping. Part 1: Investigation and classification [J].
C.M. Cheah ;
C.K. Chua ;
K.F. Leong ;
S.W. Chua .
The International Journal of Advanced Manufacturing Technology, 2003, 21 (4) :291-301
[10]   Mechanical and microstructural properties of polycaprolactone scaffolds with one-dimensional, two-dimensional, and three-dimensional orthogonally oriented porous architectures produced by selective laser sintering [J].
Eshraghi, Shaun ;
Das, Suman .
ACTA BIOMATERIALIA, 2010, 6 (07) :2467-2476