Numerical-experimental analysis of the permeability-porosity relationship in triply periodic minimal surfaces scaffolds

被引:55
作者
Pires, Tiago [1 ]
Santos, Jorge [1 ]
Ruben, Rui B. [2 ]
Gouveia, Barbara P. [1 ]
Castro, Andre P. G. [1 ]
Fernandes, Paulo R. [1 ]
机构
[1] Univ Lisbon, Inst Super Tecn, IDMEC, Lisbon, Portugal
[2] Polytech Inst Leiria, CDRSP, ESTG, Leiria, Portugal
关键词
Bone tissue engineering; Scaffolds; Permeability; Triply periodic minimal surfaces; Computational fluid dynamics; CLINICAL TRANSLATION; SHEAR-STRESS; TISSUE; DESIGN; ARCHITECTURE; FABRICATION; SIZE;
D O I
10.1016/j.jbiomech.2021.110263
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Bone Tissue Engineering has been focusing on improving the current methods for bone repair, being the use of scaffolds presented as an upgrade to traditional surgery techniques. Scaffolds are artificially porous matrices, meant to promote cell seeding and proliferation, being these properties influenced by the permeability of the structure. This work employed experimental pressure drop tests and Computational Fluid Dynamics models to assess permeability (and fluid streamlines) within different triply periodic minimal surfaces scaffold geometries (Schwarz D, Gyroid and Schwarz P). The pressure outputs from the computational analysis presented a good correlation with the experimental results, with R2 equal to 0.903; they have also shown that a lower porosity may not mean a lower permeability if the geometry is altered, such as the difference between 60% porous Gyroid scaffolds (8.1*10-9 mm2) and 70% porous Schwarz D scaffolds (7.1*10-9 mm2). Fluid streamlines revealed how the Gyroid geometries are the most appropriate design for most bone tissue engineering applications, due to their consistent fluid permeation, followed by Schwarz D. The Schwarz P geometries have shown flat streamlines and significant variation of the permeability with the porosity (an increase of 10% in their porosity lead to an increase in the permeability from 5.1*10-9 mm2 to 11.7*10-9 mm2), which would imply a poor environment for cell seeding and proliferation. (c) 2021 Elsevier Ltd. All rights reserved.
引用
收藏
页数:8
相关论文
共 40 条
[1]  
3D Systems, 2017, MULTIJET PLASTIC PRI
[2]   Computational Fluid Dynamics Study of the Effects of Surface Roughness on Permeability and Fluid Flow-Induced Wall Shear Stress in Scaffolds [J].
Ali, Davar ;
Sen, Sadri .
ANNALS OF BIOMEDICAL ENGINEERING, 2018, 46 (12) :2023-2035
[3]   Permeability and fluid flow-induced wall shear stress of bone tissue scaffolds: Computational fluid dynamic analysis using Newtonian and non-Newtonian blood flow models [J].
Ali, Davar ;
Sen, Sadri .
COMPUTERS IN BIOLOGY AND MEDICINE, 2018, 99 :201-208
[4]   Surface curvature in triply-periodic minimal surface architectures as a distinct design parameter in preparing advanced tissue engineering scaffolds [J].
Blanquer, Sebastien B. G. ;
Werner, Maike ;
Hannula, Markus ;
Sharifi, Shahriar ;
Lajoinie, Guillaume P. R. ;
Eglin, David ;
Hyttinen, Jari ;
Poot, Andre A. ;
Grijpma, Dirk W. .
BIOFABRICATION, 2017, 9 (02)
[5]   Permeability versus Design in TPMS Scaffolds [J].
Castro, A. P. G. ;
Pires, T. ;
Santos, J. E. ;
Gouveia, B. P. ;
Fernandes, P. R. .
MATERIALS, 2019, 12 (08)
[6]   Numerical and experimental evaluation of TPMS Gyroid scaffolds for bone tissue engineering [J].
Castro, A. P. G. ;
Ruben, R. B. ;
Goncalves, S. B. ;
Pinheiro, J. ;
Guedes, J. M. ;
Fernandes, P. R. .
COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2019, 22 (06) :567-573
[7]   Micromechanical study of the load transfer in a polycaprolactone-collagen hybrid scaffold when subjected to unconfined and confined compression [J].
Castro, A. P. G. ;
Lacroix, D. .
BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2018, 17 (02) :531-541
[8]   Flow perfusion culture of MC3T3-E1 osteogenic cells on gradient calcium polyphosphate scaffolds with different pore sizes [J].
Chen, Liang ;
Song, Wei ;
Markel, David C. ;
Shi, Tong ;
Muzik, Otto ;
Matthew, Howard ;
Ren, Weiping .
JOURNAL OF BIOMATERIALS APPLICATIONS, 2016, 30 (07) :908-918
[9]   A permeability measurement system for tissue engineering scaffolds [J].
Chor, Maxwell V. ;
Li, Wei .
MEASUREMENT SCIENCE AND TECHNOLOGY, 2007, 18 (01) :208-216
[10]   Bioresorbable scaffolds for bone tissue engineering: Optimal design, fabrication, mechanical testing and scale-size effects analysis [J].
Coelho, Pedro G. ;
Hollister, Scott J. ;
Flanagan, Colleen L. ;
Fernandes, Paulo R. .
MEDICAL ENGINEERING & PHYSICS, 2015, 37 (03) :287-296