Manufacturing

Manufacturing of nanocomposites with engineering plastics by Vikas Mittal

By Vikas Mittal

Manufacturing of Nanocomposites with Engineering Plastics collates fresh learn findings at the production, houses, and functions of nanocomposites with engineering plastics in a single finished quantity. The ebook particularly examines themes of engineering plastics, rheology, thermo-mechanical homes, put on, flame retardancy, modeling, filler floor amendment, and extra. It represents a prepared reference for managers and students operating within the parts of polymer and nanocomposite fabrics technology, either in and academia, and offers introductory info for individuals new to the field.

  • Provides a complete overview of the newest examine findings
  • A unmarried one-stop prepared reference that assimilates wisdom at the improvement of nanocomposites with engineering plastics
  • Contributions from top specialists within the field
  • Provides examples of functions that might support with fabric choice
  • Chapters are designed to supply not just introductory details, but additionally to steer the reader to extra complicated characterization tools

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Its choice as a filler is due to its excellent electrical and mechanical properties, which are significantly better than other inorganic filler materials. , 2007). All of these properties make this material even superior to carbon nanotubes for use in polymer nanocomposites. , 2009; Chaudhry and Mittal, 2013; Mittal and Matsko, 2013). , 2008). The macroscopic properties of polymer nanocomposites are primarily dependent on the thermodynamic factors such as interfacial compatibility of polymer and filler phases, polarity match between the filler surface and the polymer chains, and the like.

1999. J. Am. Chem. Soc. 121, 4088. , 2003. J. Appl. Polym. Sci. 88, 3225. , 2004. Macromolecules 37, 8846. , 2008. Appl. Surf. Sci. 254, 5236. , 1993. J. Polym. Sci. A Polym. Chem. 31, 2493. , 1997. J. Polym. Sci. A Polym. Chem. 35, 2289. , 2000a. Science 287, 637. , 2000b. Phys. Rev. Lett. 84, 5552. , 2000. Polym. Int. 49, 1561. , 2005. Nature 438, 201. , 2012. Compos. Part A 43, 1537–1545. , 2009. Nano Lett. 9, 3012. , 2004. J. Phys. Chem. B 108, 11317. , 2008. Polym. Eng. Sci. 48 (8), 1624–1633.

6 shows the FTIR patterns of FH clay, OFH clay, PSf, and PSf/clay nanocomposites at different OFH clay concentrations. The common features in the FTIR spectra for FH clay are the presence of characteristic bands at 3450, 1620, 1045, and 520 cm−1 due to OH stretching of water, OH deformation of water, SiO stretching, and AlOSi deformation, respectively. OFH shows the presence of a new band at around 1472 cm−1 for CH2 scissoring. Further, the intensity of OH peaks has diminished due to the ion-exchange reaction.

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