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Monitoring and Testing of the Carbon Plastic Recovery by Radiowave and Thermal Methods

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Abstract

The paper considers the use of combined radio wave and thermal methods to test the process of carbon-containing composite recovery by thermal cryo shock in a laboratory environment.

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REFERENCES

  1. Lester, E., Kingman, S., Wong, K., and Rudd, Ch., Microwave Heating as a Means for Carbon Fibre Recovery from Polymer Composites: a Technical Feasibility Study, Materials Research Bulletin, 2004, vol. 39, issue 10, pp. 1549–1556.

    Article  Google Scholar 

  2. Zheng, Y., Shen, Z., Ma, S., Cai, C., Zhao, X., and Xing, Y., A Novel Approach to Recycling of Glass Fibers from Non-Metal Materials of Waste Printed Circuit Boards, J. of Hazardous Materials, 2009, vol. 170, issue 2-3, pp. 978–982.

    Article  Google Scholar 

  3. Pimenta, S. and Pinho, S.T., Recycling Carbon Fibre Reinforced Polymers for Structural Applications: Technology Review and Market Outlook, Waste Management, 2011, vol. 31, pp. 378–392.

    Article  Google Scholar 

  4. Palmer, J., Ghita, O.R., Savage, L., and Evans, K.E., Successful Closed-Loop Recycling of Thermoset Composites, Composites Part A: Applied Science and Manufacturing, 2009, vol. 40, issue 4, pp. 490–498.

    Article  Google Scholar 

  5. Steenkamer, D.A. and Sullivan, J.L., On the Recyclability of a Cyclic Thermoplastic Composite Material, Composites Part B: Engineering, 1998, vol. 29, issue 6, pp. 745–752.

    Article  Google Scholar 

  6. Fromonteil, C., Bardelle, P., and Cansell, F., Hydrolysis and Oxidation of an Epoxy Resin in Sub- and Supercritical Water, Industrial and Engineering Chemistry Research, 2000, vol. 39, issue 4, pp. 922–925.

    Article  Google Scholar 

  7. Dang, W., Kubouchi, M., Sembokuya, H., and Tsuda, K., Chemical Recycling of Glass Fiber Reinforced Epoxy Resin Cured with Amine Using Nitric Acid, Polymer, 2005, vol. 46, issue 6, pp. 1905–1912.

    Article  Google Scholar 

  8. Pickering, S.J., Recycling Technologies for Thermoset Composite Materials—Current Status, Composites Part A: Applied Science and Manufacturing, 2006, vol. 37, issue 8, pp. 1206–1215.

    Article  Google Scholar 

  9. Meyer, L.O., Schulte, K., and Grove-Nielsen, E., CFRP-Recycling Following a Pyrolysis Route: Process Optimization and Potentials, Journal of Composite Materials, 2009, vol. 43, issue 9, pp. 1121–1132.

    Article  Google Scholar 

  10. Oliveux, G., Dandy, L.O., and Leeke, G.A., Current Status of Recycling of Fibre Reinforced Polymers: Review of Technologies, Reuse and Resulting Properties, Progress in Materials Science, 2015, vol. 72, pp. 61–99.

    Article  Google Scholar 

  11. Oliveux, G., Bailleul, J., Gillet, A., Mantaux, O., and Leeke, G.A., Recovery and Reuse of Discontinuous Carbon Fibres by Solvolysis: Realignment and Properties of Remanufactured Materials, Composites Science and Technology, 2017, vol. 139, pp. 99–108.

    Article  Google Scholar 

  12. Wong, K.H., Mohammed, D.S., Pickering, S.J., and Brooks, R., Effect of Coupling Agents on Reinforcing Potential of Recycled Carbon Fibre for Polypropylene Composite, Composites Science and Technology, 2012, vol. 72, issue 7, pp. 835–844.

    Article  Google Scholar 

  13. Stoeffler, K., Andjelic, S., Legros, N., and Roberge, J., Polyethylene Sulphide (PPS) Composites Reinforced with Recycled Carbon Fiber, Composites Science and Technology, 2013, vol. 84, pp. 65–71.

    Article  Google Scholar 

  14. Harper, L.T., Turner, T.A., Martin, J.R.B., and Warrior, N.A., Fiber Alignment in Directed Carbon Fiber Preforms—a Feasibility Study, Journal of Composite Materials, 2009, vol. 43, pp. 57–74.

    Article  Google Scholar 

  15. Feraboli, P., Kawakami, H., and Wade, B., Recyclability and Reutilization of Carbon Fiber Fabric/Epoxy Composites, Journal of Composite Materials, 2012, vol. 46, pp. 1459–1473.

    Article  Google Scholar 

  16. Fedotov, A.A. and Tsipenko, A.E., Experimental Study of the Fatigue Stiffness Degradation for the Carbon Fiber Reinforced Plastic at Variable Temperature, Izv. Vuz. Av. Tekhnika, 2019, vol. 62, no. 1, pp. 15–21 [Russian Aeronautics (Engl. Transl.), 2019, vol. 62, no. 1, pp. 14–21].

    Google Scholar 

  17. Dyson, J.D., The Measurement of Phase at UHF and Microwave Frequencies, IEEE Transactions on Microwave Theory and Techniques, 1966, vol. 14, issue 9, pp. 410–423.

    Article  Google Scholar 

  18. Solovov, V.Ya., Fazovye izmereniya (Phase Measurement), Moscow: Energiya, 1973.

    Google Scholar 

  19. Krasyuk, V.N., Antenny SVCh s dielektricheskimi pokrytiyami (Microwave Antennas with Dielectric Coating), Leningrad: Sudostroenie, 1986.

    Google Scholar 

  20. Shifrin, Ya.S., Voprosy statisticheskoi teorii antenn (Issues of Statistical Theory of Antennas), Moscow: Sovetskoe Radio, 1970.

    Google Scholar 

  21. Grigor’ev, B.A., Impulsnyi nagrev izlucheniyami (Pulse Heating by Radiation), Moscow: Nauka, 1974, vol. 2, Nestatsionarnye temperaturnye polya pri impul'snom luchistom nagreve (Nonstationary Temperature Fields during Pulsed Radiant Heating).

    Google Scholar 

  22. Gershenzon, V.E., Raizer, V.Yu., and Etkin, V.S., The Transition Layer Method in Problems of Thermal Radiation of a Rough Surface, Izv. Vuz. Radiofizika, 1982, vol. 25, no.11, pp. 1279–1284.

    Google Scholar 

  23. Samarskii, A.A. and Vabishchevich, P.N., Vychislitel’naya teploperedacha (Heat Transfer Computation), Moscow: Editorial URSS, 2003.

    Google Scholar 

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ACKNOWLEDGEMENTS

The study was financially supported by the Russian Foundation for Basic Research and the Government of the Ulyanovsk Region in the framework of the scientific project no. 18-48-732005/18.

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Correspondence to D. V. Yastrebov.

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Yastrebov, D.V., Zgural’skaya, E.N. Monitoring and Testing of the Carbon Plastic Recovery by Radiowave and Thermal Methods. Russ. Aeronaut. 63, 538–543 (2020). https://doi.org/10.3103/S106879982003023X

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  • DOI: https://doi.org/10.3103/S106879982003023X

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