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Isothermal decomposition behavior and dynamic mechanical properties of in situ-reinforcing elastomer composites based on thermoplastic elastomers and thermotropic liquid crystalline polymer

  • Mahasarakham University
  • Mahidol University

Research output: Contribution to journalArticlepeer-review

12 Citations (Scopus)

Abstract

In situ-reinforcing composites based on two elastomer matrices very different in melt viscosity, styrene-(ethylene butylene)-styrene triblock copolymer (Kraton G1650), and styrene-(ethylene propylene) diblock copolymer (Kraton G1701), and a thermotropic liquid crystalline polymer (TLCP), Rodrun LC3000, were prepared using a twin-screw extruder. The isothermal decomposition behavior and dynamic mechanical properties of the extruded strands were investigated by means of thermogravimetry (TG) and dynamic mechanical analysis (DMA), respectively. No significant change in the shape of TG curves for the neat matrices and their LC3000-containing blends was observed under isothermal heating in nitrogen. In air, G1650 and G1701 showed a single weight-loss stage and rapid decomposition whereas their blends with 30 wt % LC3000 showed different profiles of weight loss depending on isothermal temperatures. The calculated kinetic parameters indicated mat the thermal stability of the polymers is much higher in nitrogen than in air and suggested an enhancement of thermal resistance of the elastomer matrices by addition of TLCP. DMA results showed a great enhancement in dynamic moduli for the blend with 10 wt % LC3000 when compared with the neat matrix. The tan 5 peaks corresponding to the elastic and hard phases in both matrices mostly shifted to the lower temperature with LC3000 loading.

Original languageEnglish
Pages (from-to)917-927
Number of pages11
JournalJournal of Applied Polymer Science
Volume103
Issue number2
DOIs
Publication statusPublished - 15 Jan 2007
Externally publishedYes

Keywords

  • Dynamic mechanical property
  • Isothermal degradation
  • Liquid crystalline polymer
  • Polymer in situ composite
  • Thermal property
  • Thermoplastic elastomer

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