Non-Linear Viscoelasticity of Rubber Composites and by Deepalekshmi Ponnamma, Sabu Thomas

By Deepalekshmi Ponnamma, Sabu Thomas

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Saengsuwan S, Saikrasun S (2012) Thermal stability of styrene-(ethylene butylene)-styrenebased elastomer composites modified by liquid crystalline polymer, clay and carbon nanotube. J Therm Anal Calorim 110:1395–1406 27. Zha JW, Shehzad K, Li WK, Dang ZM (2013) The effect of aspect ratio on the piezoresistive behavior of the multiwalled carbon nanotubes/thermoplastic elastomer nanocomposites. J Appl Phys 113:014102 28. Heinrich G, Kluppel M, Vilgis TA (2002) Reinforcement of elastomers. Curr Opin Solid State Mater Sci 6:195–203 29.

6 GPa in the glassy state at low temperature and the elastic modulus rapidly drops by three orders of magnitude with increasing temperature due to an energy dissipation mechanism involving cooperative movement of long chain sequences. The drop in modulus has significantly been reduced in nanocomposites presumably due to restriction imposed by the network of nanoparticles especially in the rubbery region. The loss factor (tan δ) passes through a maximum approximately at 205 K showing the relaxation/glass transition temperature of the samples.

Fan X, Wang Z, Wang K, Deng H, Chen F, Fu Q (2012) Acid-modified carbon nanotubes distribution and mechanical enhancement in polystyrene/elastomer blends. Polym Eng Sci 52:964–971 88. Puglia D, Valentini I, Kenny JM (2003) Analysis of the cure reaction of carbon nanotubes/ epoxy resin composites through thermal analysis and Raman spectroscopy. J Appl Polym Sci 88:452–458 89. Sui G, Zhong W, Yang X, Zhao S (2007) Processing and material characteristics of a carbonnanotube-reinforced natural rubber.

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