DESIGN AND FABRICATION OF 3D PRINTED TISSUE SCAFFOLDS INFORMED BY MECHANICS AND FLUIDS SIMULATIONS

被引:0
作者
Egan, Paul F. [1 ]
Gonella, Veronica C. [2 ]
Engensperger, Max [2 ]
Ferguson, Stephen J. [3 ]
Shea, Kristina [2 ]
机构
[1] Swiss Fed Inst Technol, Hlth Sci & Technol, Zurich, Switzerland
[2] Swiss Fed Inst Technol, Mech & Proc Engn, Zurich, Switzerland
[3] Swiss Fed Inst Technol, Inst Biomech, Hlth Sci & Tech, Zurich, Switzerland
来源
PROCEEDINGS OF THE ASME INTERNATIONAL DESIGN ENGINEERING TECHNICAL CONFERENCES AND COMPUTERS AND INFORMATION IN ENGINEERING CONFERENCE, 2017, VOL 2A | 2017年
关键词
BONE; PERMEABILITY; MICROSTRUCTURE; FOAMS; MORPHOLOGY; STRENGTH; GEOMETRY; MODEL;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Advances in additive manufacturing are enabling the fabrication of lattices with complex geometries that are potentially advantageous as tissue scaffolds. Scaffold design for optimized mechanics and tissue growth is challenging, due to complicated trade-offs among scaffold structural properties including porosity, pore size, surface-volume ratio, elastic modulus, shear modulus, and permeability. Here, a design for additive manufacturing approach is developed for tuning unit cell libraries as tissue scaffolds through (1) simulation, (2) design automation, and (3) fabrication. Finite element simulations are used to determine elastic and shear moduli of lattices as a function of porosity. Fluids simulations suggest that lattice permeability scales with porosity cubed over surface-volume ratio squared. The design automation approach uses simulation results to configure lattices with specified porosity and pore size. A cubic and octet lattice are fabricated with pore sizes of 1,000um and porosities of 60%; these lattice types represent unit cells with high unidirectional elastic modulus/permeability and high shear modulus/surface-volume ratio, respectively. Imaging suggests the 3D printing process recreates the form accurately, but distorts microscale features. Future iterations are required to determine how lattices perform in comparison to computational predictions. The developed approach provides the foundations of a design automation approach for optimized 3D printed tissue scaffolds informed by simulation and experiments.
引用
收藏
页数:10
相关论文
共 52 条
[1]   Framework for optimal design of porous scaffold microstructure by computational simulation of bone regeneration [J].
Adachi, T ;
Osako, Y ;
Tanaka, M ;
Hojo, M ;
Hollister, SJ .
BIOMATERIALS, 2006, 27 (21) :3964-3972
[2]   High-strength porous biomaterials for bone replacement: A strategy to assess the interplay between cell morphology, mechanical properties, bone ingrowth and manufacturing constraints [J].
Arabnejad, Sajad ;
Johnston, R. Burnett ;
Pura, Jenny Ann ;
Singh, Baljinder ;
Tanzer, Michael ;
Pasini, Damiano .
ACTA BIOMATERIALIA, 2016, 30 :345-356
[3]   The properties of foams and lattices [J].
Ashby, MF .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2006, 364 (1838) :15-30
[4]   Experimental and theoretical investigation of directional permeability of human vertebral cancellous bone for cement infiltration [J].
Baroud, G ;
Falk, R ;
Crookshank, M ;
Sponagel, S ;
Steffen, T .
JOURNAL OF BIOMECHANICS, 2004, 37 (02) :189-196
[5]   Cellular Nutrition in Complex Three-Dimensional Scaffolds: A Comparison between Experiments and Computer Simulations [J].
Bergemann, Claudia ;
Elter, Patrick ;
Lange, Regina ;
Weissmann, Volker ;
Hansmann, Harald ;
Klinkenberg, Ernst-Dieter ;
Nebe, Barbara .
INTERNATIONAL JOURNAL OF BIOMATERIALS, 2015, 2015
[6]   A Mechanobiology-based Algorithm to Optimize the Microstructure Geometry of Bone Tissue Scaffolds [J].
Boccaccio, Antonio ;
Uva, Antonio Emmanuele ;
Fiorentino, Michele ;
Lamberti, Luciano ;
Monno, Giuseppe .
INTERNATIONAL JOURNAL OF BIOLOGICAL SCIENCES, 2016, 12 (01) :1-17
[7]   The size matching and scaling method: a synthesis method for the design of mesoscale cellular structures [J].
Chang, Patrick S. ;
Rosen, David W. .
INTERNATIONAL JOURNAL OF COMPUTER INTEGRATED MANUFACTURING, 2013, 26 (10) :907-927
[8]  
Chantarapanich N., 2012, COMPUTATIONAL MATH M, V2012
[9]   Effect of cell seeding and mechanical loading on vascularization and tissue formation inside a scaffold: A mechano-biological model using a lattice approach to simulate cell activity [J].
Checa, Sara ;
Prendergast, Patrick J. .
JOURNAL OF BIOMECHANICS, 2010, 43 (05) :961-968
[10]   Microstructure design of biodegradable scaffold and its effect on tissue regeneration [J].
Chen, Yuhang ;
Zhou, Shiwei ;
Li, Qing .
BIOMATERIALS, 2011, 32 (22) :5003-5014