Abstract
In this study, dissolved styrene butadiene styrene (SBS) copolymer is homogeneously reinforced into orthophthalic unsaturated polyester (UP) resin. Polyester composite production is carried out with the help of methyl ethyl ketone peroxide (MEKP) and cobalt octoate (Co Oc) catalysts. The density, Shore D hardness, thermal conductivity coefficient, thermal stability, morphological surface structure, and chemical bond structure of the obtained composite have been examined. According to the results, SBS reinforcement decreases the density of the composite and increases the thermal conductivity coefficient. The addition of SBS at different weight ratios (1%, 3%, 5%, 7%, and 10% w/w) reduces both the hardness and thermal stability of the polyester composite. According to the test and analysis results, 5 wt.% SBS reinforced polyester composite production is determined as the optimum ratio. 7 wt.% and above SBS reinforcement negatively affect the physical and chemical properties of the obtained composite. For example, when 10 wt.% SBS reinforced composite is examined by scanning electron microscope (SEM), and irregular pores are observed in the surface morphology. Also, it is understood by Fourier transform infrared spectroscopy (FTIR) that there is a physical interaction between SBS and polyester and that no chemical bond is formed. The thermal decomposition behavior of the composite has been determined according to the decrease in the activation energy. As SBS ratio increases, it is understood that the thermal stability of the product obtained with the decrease in the activation energy of the polyester composite weakens.
Publisher
The Turkish Chemical Society
Reference35 articles.
1. 1. Chirtoc M, Horny N, Tavman I, Turgut A, Kökey I, Omastová M. Preparation and photothermal characterization of nanocomposites based on high density polyethylene filled with expanded and unexpanded graphite: Particle size and shape effects. Int J Therm Sci [Internet]. 2012 Dec 1;62:50–5. Available from: .
2. 2. Mohan VB, Lau K, Hui D, Bhattacharyya D. Graphene-based materials and their composites: A review on production, applications and product limitations. Compos Part B Eng [Internet]. 2018 Jun 1;142:200–20. Available from: .
3. 3. Neto J, Banea M, Cavalcanti D, Queiroz H, Aguiar R. Analysis of mechanical and thermal properties of epoxy multiwalled carbon nanocomposites. J Compos Mater [Internet]. 2020 Dec 1;54(30):4831–40. Available from: .
4. 4. Marchetto DB, Moreira DC, Ribatski G. A review on polymer heat sinks for electronic cooling applications. In: Proceedings of the 17th Brazilian Congress of Thermal Sciences and Engineering, ABCM, Águas de Lindóia, SP, Brazil. 2018. p. 25–8.
5. 5. Holden G, Bishop ET, Legge NR. Thermoplastic elastomers. J Polym Sci Part C Polym Symp [Internet]. 2007 Mar 8;26(1):37–57. Available from: .