By L. Ambrosio (Eds.)
Biocomposites are regularly occurring within the scientific to fix and fix bone, teeth, cartilage dermis and different tissues. Biomedical composites, offers a radical assessment of the present prestige, fresh growth and destiny tendencies in composites for biomedical applications.
Part one discusses the basics of biocomposites with chapters on traditional composites, layout and fabrication of biocomposites, and difficult and smooth tissue functions of biocomposites. half then reports purposes of biocomposites. Chapters speak about composites for bone fix, composite coatings for implants, composites for spinal implants, injectable composites and composites for tissue engineered scaffolds. Chapters partly 3 talk about the biocompatibility, mechanical behaviour and failure of biocomposites with such issues as mobile reaction, checking out of biocomposites and tribology of biocomposites. eventually half 4 reports the longer term for biocomposites with chapters on nano-structured biocomposites, constructing biocomposites as scaffolds and biocomposites in tissue engineering and regenerative medicine.
With its distinctive editor and staff of overseas individuals, Biomedical composites is a necessary connection with fabrics scientists and researchers in and academia, in addition to all these all in favour of this more and more vital field.
- Provides a radical evaluation of the present prestige, contemporary growth and destiny tendencies in composites for biomedical applications
- Discusses the basics of biocomposites with chapters on average composites, layout and fabrication of biocomposites and their applications
- Chapters deal with composites for bone fix, spinal implants and diverse different purposes and speak about biocompatability, mechanical behaviour and failure of biocomposites
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Additional info for Biomedical Composites
2008). The bio-molding test program – a collaborative activity of industry and university. 3rd Polymers and Moulds Innovations Conference. Ghent, Belgium. landers, r. et al. (2002). ‘Fabrication of soft tissue engineering scaffolds by means of rapid prototyping techniques’. Journal of Materials Science 37(15): 3107–3116. lannutti, j. et al. (2007). ‘Electrospinning for tissue engineering scaffolds’. Materials Science and Engineering C-Biomimetic and Supramolecular Systems 27(3): 504–509. leong, k.
Additionally, a few examples of applications and their specific materials are given. x Phase separation Electrospinning 1 x x x x Metal/ ceramic (high T) 3D geometry (porosity per design) 3D geometry (porosity per design) Filament/profile 3D shape (dense) Hollow shape Non-woven material Porous simple geometries Porous sheets Final product x x x x x x x x Compound x x x x Multimaterial Biocomposite type PLA, PCL fibrin gels Ti PCL CaCO3 PLLA, PCL PCL collagen gel ePTFE PLA PLGA collagen gels PLGA Material example Products made with one technique can be combined with other techniques in order to obtain multi-material parts.
Rho JY, Zioupos P, Currey JD, Pharr GM (2002), ‘Microstructural elasticity and regional heterogeneity in human femoral bone of various ages examined by nanoindentation,’ Journal of Biomechanics 35:189. Teo JCM, Si-Hoe KM, Keh JEL, Teoh SH (2007), ‘Correlation of cancellous bone microarchitectural parameters from microCT to CT number and bone mechanical properties,’ Materials Science Engineering C27:333. Teo JCM, Si-Hoe KM, Keh JEL, Teoh SH (2006), ‘Relationship between CT intensity, micro-architecture and mechanical properties of porcine vertebral cancellous bone,’ Clinical Biomechanics 21:235.