Comprehensive assessment of bioactive glass and glass-ceramic scaffold permeability: experimental measurements by pressure wave drop, modelling and computed tomography-based analysis.
暂无分享,去创建一个
C. Bignardi | E. Fiume | F. Baino | A. Schiavi | E. Verné | G. Orlygsson
[1] E. Fiume,et al. Dolomite-Foamed Bioactive Silicate Scaffolds for Bone Tissue Repair , 2020, Materials.
[2] E. Fiume,et al. Comparison between Bioactive Sol-Gel and Melt-Derived Glasses/Glass-Ceramics Based on the Multicomponent SiO2–P2O5–CaO–MgO–Na2O–K2O System , 2020, Materials.
[3] J. Mauro,et al. Mechanical properties of bioactive glasses, ceramics, glass-ceramics and composites: State-of-the-art review and future challenges. , 2019, Materials science & engineering. C, Materials for biological applications.
[4] P. Velásquez,et al. Easy manufacturing of 3D ceramic scaffolds by the foam replica technique combined with sol-gel or ceramic slurry , 2019, Ceramics International.
[5] E. Fiume,et al. Processing methods for making porous bioactive glass‐based scaffolds—A state‐of‐the‐art review , 2019, International Journal of Applied Ceramic Technology.
[6] E. Fiume,et al. Robocasting of SiO2-Based Bioactive Glass Scaffolds with Porosity Gradient for Bone Regeneration and Potential Load-Bearing Applications , 2019, Materials.
[7] C. Bignardi,et al. Bread-Derived Bioactive Porous Scaffolds: An Innovative and Sustainable Approach to Bone Tissue Engineering , 2019, Molecules.
[8] E. Fiume,et al. Robocasting of Bioactive SiO2-P2O5-CaO-MgO-Na2O-K2O Glass Scaffolds , 2019, Journal of healthcare engineering.
[9] E. Fiume,et al. Crystallization behavior of SiO2–P2O5–CaO–MgO–Na2O–K2O bioactive glass powder , 2019, Biomedical Glasses.
[10] D. Greenspan. Bioglass at 50 – A look at Larry Hench’s legacy and bioactive materials , 2019, Biomedical Glasses.
[11] Xianke Lu,et al. Flow measurements in microporous media using micro-particle image velocimetry , 2018, Physical Review Fluids.
[12] Pavel Praks,et al. Unified Friction Formulation from Laminar to Fully Rough Turbulent Flow , 2018, Applied Sciences.
[13] F. Topin,et al. State-of-the-Art of Pressure Drop in Open-Cell Porous Foams: Review of Experiments and Correlations , 2017 .
[14] F. Baino,et al. Quantifying the micro-architectural similarity of bioceramic scaffolds to bone , 2017 .
[15] F. Topin,et al. Influence of Morphology on Flow Law Characteristics in Open-Cell Foams: An Overview of Usual Approaches and Correlations , 2017 .
[16] Roman D. Hryciw,et al. Roundness and Sphericity of Soil Particles in Assemblies by Computational Geometry , 2016, J. Comput. Civ. Eng..
[17] S. Aliabadi,et al. Computational study of no-slip and rarefied slip flows in infinite structured porous media , 2016 .
[18] Jinsui Wu,et al. a Review on Non-Darcy Flow — Forchheimer Equation, Hydraulic Radius Model, Fractal Model and Experiment , 2016 .
[19] H. Freund,et al. Development of a new pressure drop correlation for open-cell foams based completely on theoretical grounds: Taking into account strut shape and geometric tortuosity , 2016 .
[20] G. Logroscino,et al. Bone substitutes in orthopaedic surgery: from basic science to clinical practice , 2014, Journal of Materials Science: Materials in Medicine.
[21] Jan Henkel,et al. Bone Regeneration Based on Tissue Engineering Conceptions — A 21st Century Perspective , 2013, Bone Research.
[22] D. Gallo,et al. A Survey of Methods for the Evaluation of Tissue Engineering Scaffold Permeability , 2013, Annals of Biomedical Engineering.
[23] S. Iliffe,et al. Frailty in elderly people , 2013, The Lancet.
[24] Alessandro Schiavi,et al. Acoustic method for permeability measurement of tissue-engineering scaffold , 2012 .
[25] Eduardo Saiz,et al. Bioactive glass scaffolds for bone tissue engineering: state of the art and future perspectives. , 2011, Materials science & engineering. C, Materials for biological applications.
[26] Aldo R Boccaccini,et al. A review of the biological response to ionic dissolution products from bioactive glasses and glass-ceramics. , 2011, Biomaterials.
[27] M Bohner,et al. Commentary: Deciphering the link between architecture and biological response of a bone graft substitute. , 2011, Acta biomaterialia.
[28] Aldo R. Boccaccini,et al. Bioactive Glass and Glass-Ceramic Scaffolds for Bone Tissue Engineering , 2010, Materials.
[29] Reinhard Conradt,et al. Sintering and crystallisation of 45S5 Bioglass® powder , 2009 .
[30] Larry L. Hench,et al. Genetic design of bioactive glass , 2009 .
[31] Aldo R Boccaccini,et al. Permeability evaluation of 45S5 Bioglass-based scaffolds for bone tissue engineering. , 2009, Journal of biomechanics.
[32] Delbert E Day,et al. Mechanical and in vitro performance of 13-93 bioactive glass scaffolds prepared by a polymer foam replication technique. , 2008, Acta biomaterialia.
[33] David Edouard,et al. Pressure drop modeling on SOLID foam: State-of-the art correlation , 2008 .
[34] Boming Yu,et al. A resistance model for flow through porous media , 2008 .
[35] C. Bignardi,et al. Bone Mineral Density and Singh Index Predict Bone Mechanical Properties of Human Femur , 2008, Connective tissue research.
[36] Aldo R Boccaccini,et al. 45S5 Bioglass-derived glass-ceramic scaffolds for bone tissue engineering. , 2006, Biomaterials.
[37] D. Kaplan,et al. Porosity of 3D biomaterial scaffolds and osteogenesis. , 2005, Biomaterials.
[38] Karin A. Hing,et al. Bioceramic Bone Graft Substitutes: Influence of Porosity and Chemistry , 2005 .
[39] Yu Bo-Ming,et al. A Geometry Model for Tortuosity of Flow Path in Porous Media , 2004 .
[40] P. Layrolle,et al. Macroporous biphasic calcium phosphate scaffold with high permeability/porosity ratio. , 2003, Tissue engineering.
[41] S. Majumdar,et al. Structure Analysis of High Resolution Magnetic Resonance Imaging of the Proximal Femur: In Vitro Correlation with Biomechanical Strength and BMD , 2003, Calcified Tissue International.
[42] Robert K. Niven,et al. Physical insight into the Ergun and Wen & Yu equations for fluid flow in packed and fluidised beds , 2002 .
[43] K. Leong,et al. The design of scaffolds for use in tissue engineering. Part I. Traditional factors. , 2001, Tissue engineering.
[44] T. M. Keaveny,et al. Dependence of Intertrabecular Permeability on Flow Direction and Anatomic Site , 1999, Annals of Biomedical Engineering.
[45] P. Rüegsegger,et al. Direct Three‐Dimensional Morphometric Analysis of Human Cancellous Bone: Microstructural Data from Spine, Femur, Iliac Crest, and Calcaneus , 1999, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[46] Jussi Timonen,et al. Permeability and effective porosity of porous media , 1997 .
[47] M J Grimm,et al. Measurements of permeability in human calcaneal trabecular bone. , 1997, Journal of biomechanics.
[48] J. Masliyah,et al. Principles of single-phase flow through porous media , 1996 .
[49] Antti I. Koponen,et al. Tortuous flow in porous media. , 1996, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics.
[50] C. Simmons,et al. Trabecular bone morphology from micro‐magnetic resonance imaging , 1996, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[51] J. P. D. Plessis,et al. Analytical quantification of coefficients in the Ergun equation for fluid friction in a packed bed , 1994 .
[52] M. Biot. MECHANICS OF DEFORMATION AND ACOUSTIC PROPAGATION IN POROUS MEDIA , 1962 .
[53] H. Wadell,et al. Sphericity and Roundness of Rock Particles , 1933, The Journal of Geology.
[54] N. V. Gestel,et al. Mechanical properties of bioactive glasses , 2018 .
[55] Tabatabaei Qomi,et al. The Design of Scaffolds for Use in Tissue Engineering , 2014 .
[56] Larry L. Hench,et al. Interactions between Bioactive Glass and Collagen: A Review and New Perspectives , 2013 .
[57] Scott J Hollister,et al. The pore size of polycaprolactone scaffolds has limited influence on bone regeneration in an in vivo model. , 2010, Journal of biomedical materials research. Part A.
[58] C. Bianchi,et al. Early stage reactivity and in vitro behavior of silica-based bioactive glasses and glass-ceramics , 2009, Journal of materials science. Materials in medicine.
[59] Scott J. Hollister,et al. Defining Design Targets for Tissue Engineering Scaffolds , 2009 .
[60] Wei Li,et al. A permeability measurement system for tissue engineering scaffolds , 2006 .
[61] Knud Rasmussen,et al. Calculation methods for the physical properties of air used in the calibration of microphones , 1997 .
[62] S. Ergun. Fluid flow through packed columns , 1952 .
[63] O. Reynolds. III. An experimental investigation of the circumstances which determine whether the motion of water shall be direct or sinuous, and of the law of resistance in parallel channels , 1883, Proceedings of the Royal Society of London.