By Shaker A. Meguid
This e-book introduces nanocomposite fabrics owning a wide variety of multifunctionality. It elucidates novel and hugely unique advancements from contemporary study and improvement of those serious, new engineered fabrics. the gathering examines multiscale modeling, molecular dynamics, atomistic established continuum, synthesis and characterization, healthiness tracking, spectroscopic characterization thoughts, self-lubricating fabrics, and undertaking polymers. the amount gains the newest efforts of a few of the main eminent researchers on the planet. delivering a number views from the laboratory and the sphere, Advances in Nanocomposites: Modeling and Characterization is perfect for engineers, physicists, and fabrics scientists in academia and industry.
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Extra resources for Advances in Nanocomposites: Modeling, Characterization and Applications
Thermal conductivity of single-walled carbon nanotubes. Phys. Rev. B 59, 2514–2516 (1999). : Helical microtubules of graphitic carbon. Nature 354, 56–58 (1991). : Characterizing elastic properties of carbon nanotube-based composites by using an equivalent fiber. Polym. Compos. 34, 241–251 (2013). : On the determination of molecular fields. II. From the equation of state of a gas. Proc. R. Soc. Math. Phys. Eng. Sci. 106, 463–477 (1924). : Young’s modulus of single-walled nanotubes. Phys. Rev. B 58, 14013–14019 (1998).
J. Mech. Mater. Des. 9, 115–125 (2013). : Average stress in matrix and average elastic energy of materials with misfitting inclusions. Acta Metall. 21, 571–574 (1973). : Development of a 4-node finite element for the computation of nanostructured materials. Comput. Mater. Sci. 33, 443–458 (2005). 2004. : Constitutive modeling of nanotubereinforced polymer composites: modeling and characterization of nanostructured materials. Compos. Sci. Technol. 63, 1671–1687 (2003). : Effect of nanotube functionalization on the elastic properties of polyethylene nanotube composites.
2007; Dai et al. 2010, 2011; Momeni et al. 2012; Momeni and Attariani 2014). Until now, experimental techniques (Zhao et al. 2004; Fan et al. 2006; Wang et al. 2006b; Zhu et al. 2008; Bdikin et al. 2010; Espinosa et al. 2012; Fang et al. 2013; Zhang et al. 2014) and atomistic simulations (Espinosa et al. 2012; Fang et al. 2013; Zhang et al. 2014; Xiang et al. 2006; Li et al. 2007; Dai et al. 2010, 2011; Momeni et al. 2012; Momeni and Attariani 2014) have been utilized to measure the effective piezoelectric coefficients (EPCs) and examine their size dependence for different sizes and configurations of PNs.