By Vijay Kumar Thakur, Michael R. Kessler

Keeping in brain some great benefits of bio-based fabrics, this ebook specializes in the capability efficacy of other biocomposites procured from diversified typical assets and the practise and processing of the biocomposites for use for various functions. each one bankruptcy supplies an outline on a selected biocomposite fabric and its processing and profitable usage for chosen purposes. The chapters summarize lately constructed study on such themes as:

• Spider silk biocomposites

• Biogenic hydroxyapatite-based implant biocomposites

• Liquid crystals and cellulose derivatives biocomposites

• Bio-based epoxy resins

• Bio-based polyphenols and lignocellulosic fibers

• Wood-based biocomposites

• Flame retardant biocomposites

• Biocomposites for business noise control

• Cellulose-based bionanocomposites

Each person bankruptcy additionally specializes in the data and realizing of the interfaces manifested in those biocomposites platforms and the optimization of other parameters for novel houses. as well as this, the publication additionally summarizes the hot advancements made within the zone of injection molding of biocomposites, chemical functionalization of usual fibers, processing of biocomposites, and their functions within the automobile and biomedical industries. a few serious concerns and recommendations for destiny paintings are mentioned, underscoring the jobs of researchers for the effective improvement of biocomposite fabrics via price addition to reinforce their use.

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Additional resources for Green Biorenewable Biocomposites: From Knowledge to Industrial Applications

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Welsh, Jason, W. , Costas, N. Karatzas. (2002). Spider Silk Fibers Spun from Soluble Recombinant Silk Produced in Mammalian Cells. Science, 295, 472–476. , & Ittah, S. (2004). Novel assembly properties of recombinant spider dragline silk proteins. Curr. Biol. 14(22), 2070–2074. 60. (a) Xu, H. , Fan, B. , Yu, S. , Huang, Y. , Zhao, Z. , Lian, Z. , Dai, Y. , Wang, L. , Liu, Z. L. , & Li, N. (2007). Construct synthetic gene encoding artificial spider dragline silk protein and its expression in milk of transgenic mice.

87, 7120–7124. (c) Hinman, M. , & Lewis, R. V. (1992). Isolation of a clone encoding a second dragline silk fibroin. Nephila clavipes dragline silk is a two-protein fiber. J. Biol. , 267(27), 19320–19324. 22 Green Biorenewable Biocomposites: From Knowledge to Industrial Applications (d) Guerette, P. , Ginzinger, D. , Weber, B. , & Gosline, J. M. (1996). Silk properties determined by gland-specific expression of a spider fibroin gene family. Science, 272(5258), 112–115. 10. , Holland, G. , & Yarger, J.

Structural properties of recombinant nonrepetitive and repetitive parts of major ampullate spidroin 1 from Euprosthenops australis: implications for fiber formation. Biochemistry, 47(11), 3407–3417. 66. Zeleny, J. (1914). The electrical discharge from liquid points and ahydrostatic method of measuring the electric intensity J Phy Rev, 3, 69–91. 67. , Eby, R. , Reneker, D. , Hudson, S. , & Adams, W. W. (2004). Structure and morphology of electrospun silk nanofibers. Polymer, 45(11), 3973–3977. (b) Stephens, J.

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