High-Temperature Thermodestruction Analysis of a Polyphenylene-Sulfide-Based Composite by Thermogravimetry

Polymer Science, Series D - Tập 16 - Trang 137-141 - 2023
A. V. Kutsenova1, E. V. Kalugina2, A. V. Samoryadov3, V. B. Ivanov1
1Semenov Federal Research Center for Chemical Physics of the Russian Academy of Sciences, Moscow, Russia
2Polyplastic Group Management Co LLC, Moscow, Russia
3Federal State Budgetary Institution of Science Interdepartmental Center for Analytical Research in Physics, Chemistry and Biology at the Presidium of the Russian Academy of Sciences, Moscow, Russia

Tóm tắt

Thermodestruction of a polyphenylene-sulfide-based composite at temperatures up to 800°C was studied by dynamic thermogravimetric analysis. Activation energies Еа were determined using a nonlinear regression analysis within the framework of a kinetic model of the process with two noninterrelated noninteracting stages. Estimates of Еа by this and other methods were compared with the value of Еа during destruction in the isothermal regime.

Tài liệu tham khảo

J. Rabek, Experimental Methods in Polymer Chemistry (Wiley, New York, 1980). Y. A. Shlyapnikov, S. G. Kiryushkin, and A. P. Maryin, Antioxidative Stabilization of Polymers (Khimiya, Moscow, 1986; CRC Press, London, 1996). N. Saadatkhan, A. C. Garcia, S. Ackermann, et al., “Experimental methods in chemical engineering: Thermogravimetric–TGA,” Canad. J. Chem. Eng. 98, 34–43 (2020). A. L. Pomerantsev, A. V. Kutsenova, and O. E. Rodionova, “Kinetic analysis of non-isothermal solid-state reaction: Multi-stage modeling without assumption in reaction mechanism,” Phys. Chem. Chem. Phys. 19, 3606–3615 (2017). A. V. Kutsenova, V. B. Ivanov, O. E. Rodionova, et al., “A new approach to analyze the thermal degradation of polycarbonate,” Russ. J. Phys. Chem. B 14, 1042–1048 (2020). A. S. Rahate, K. R. Nemade, and S. A. Waghuley, “Polyphenylene sulfide (PPS): State of the art and applications,” Rev. Chem. Eng. 29, 471–489 (2013). F. Iokhenning, “Polyphenylene sulfide: Production, polyphenylene sulfide: Application, and prospects,” Polym. Mater., No. 2, 40–44 (2012). Z. Yu, L. Li, S. Meng, et al., “Effect of TiO2SiO2 nanoparticles on the mechanical and UV-resistance properties of polyphenylene sulfide fiber,” Prog. Nat. Sci.: Mater. Int. 25, 310–315 (2015). K. B. Mahat, I. Alarifi, A. Alharbi, et al., “Effects of UV light on the mechanical properties of carbon fiber reinforced PPS thermoplastic composites,” Macromol. Symp. 365, 157–168 (2016). V. B. Ivanov, V. V. Bitt, E. V. Solina, et al., “Reversible and irreversible color change during photo and thermal degradation of polyphenylene sulfide composite,” Polymers, No. 11, 1579 (2019). V. B. Ivanov, E. V. Solina, and A. V. Samoryadov, “The effect of irradiation conditions on photodegradation of impact resistant polyphenylene sulfide-based composite,” Polym. Sci., Ser. D 13, 353–357 (2020). X. Z. Zhang, K. Zhang, Z. Zhou, et al., “Preparation of radiation-resistant high performance polyphenylene sulfide fiber with improved processing,” Procedia Eng. 27, 1354–1358 (2012). X. Yang, L. Duan, and X. Ran, “Effect of polydopamine coating on improving photostability of polyphenylene sulfide fiber,” Polym. Bull. 74, 641–656 (2017). R. Steffen, M. Meir, J. Rekstad, et al., “Kinetic of degradation induced polymer luminescence: A polyphenylene sulfide/elastomer blend under dry heat exposure,” Polymer 136, 71–83 (2018). S. Vyazovkin, A. K. Burnham, J. M. Criado, et al., “ICTAC kinetics recommendations for performing kinetic computations on thermal analysis data,” Thermochim. Acta 520, 1–19 (2011). E. V. Bystritskaya, T. V. Monakhova, and V. B. Ivanov, “TGA application for optimizing the accelerated aging conditions on thermal aging of rubber,” Polym. Test. 32, 197–201 (2013). V. B. Ivanov, A. A. Zavodchikova, E. I. Popova, et al., “Accelerated testing of thermo-oxidative degradation of polyvinyl butyral,” Thermochim. Acta 589, 70–75 (2014). V. B. Ivanov, E. V. Solina, O. V. Staroverova, et al., “Influence of external condition on the relation between the physical and chemical processes in the thermodegradation of plasticized poly (vinyl chloride),” Russ. J. Phys. Chem. B 11, 978–984 (2017).