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Kinetic study of the decommissioned wind turbine blade oxidative liquefaction based on differential scanning calorimetry

Author

Listed:
  • Sobek, Szymon
  • Schmölzer, Stefan
  • Mumtaz, Hamza
  • Sajdak, Marcin
  • Muzyka, Roksana
  • Werle, Sebastian

Abstract

Differential scanning calorimetry using high-pressure crucibles was used to assess waste wind turbine blades oxidative liquefaction process kinetics. The total enthalpy change recorded at investigated temperatures 230, 250, and 265 °C were on average −650 kJ/kg, while the H2O2 decomposition contribution was determined during the control run as −365 kJ/kg. The apparent, isoconversional kinetic parameters yielded valuable information about the general decomposition pattern, with peaks of activation energy and pre-exponential profiles suggesting the decomposition of H2O2 with Eα peak of 20 kJ/mol at α = 0.4, and 2-stage decomposition of the epoxy during oxidative liquefaction with 2 consecutive Eα at α = 0.65 of 55.1 kJ/mol and 52.2 kJ/mol at α = 0.86. The master plot method identified the nth order autocatalytic model (Cn) transitioning to the Prout-Tompkins function (Bna) governing the process. The decomposition pathway was proposed, based on epoxy-radical reactions, resulting in autocatalytic epoxy decomposition during the process, paradoxically similar in mechanism to epoxy curing. The 2-stage consecutive model was formed and optimized, providing fit to the experimental data with quality assessed by R2 = 0.996. The activation parameters of the proposed model were 57.18 kJ/mol, 2.22 log(min−1), and 49.78 kJ/mol, 2.98 log(min−1) for the first and second stages respectively.

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  • Sobek, Szymon & Schmölzer, Stefan & Mumtaz, Hamza & Sajdak, Marcin & Muzyka, Roksana & Werle, Sebastian, 2025. "Kinetic study of the decommissioned wind turbine blade oxidative liquefaction based on differential scanning calorimetry," Energy, Elsevier, vol. 316(C).
  • Handle: RePEc:eee:energy:v:316:y:2025:i:c:s0360544225002932
    DOI: 10.1016/j.energy.2025.134651
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    References listed on IDEAS

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    1. Hamza Mumtaz & Sebastian Werle & Roksana Muzyka & Szymon Sobek & Marcin Sajdak, 2024. "Oxidative Liquefaction, an Approach for Complex Plastic Waste Stream Conversion into Valuable Oxygenated Chemicals," Energies, MDPI, vol. 17(5), pages 1-14, February.
    2. Mumtaz, Hamza & Sobek, Szymon & Sajdak, Marcin & Muzyka, Roksana & Drewniak, Sabina & Werle, Sebastian, 2023. "Oxidative liquefaction as an alternative method of recycling and the pyrolysis kinetics of wind turbine blades," Energy, Elsevier, vol. 278(PB).
    3. Jensen, J.P. & Skelton, K., 2018. "Wind turbine blade recycling: Experiences, challenges and possibilities in a circular economy," Renewable and Sustainable Energy Reviews, Elsevier, vol. 97(C), pages 165-176.
    4. Bach, Quang-Vu & Tran, Khanh-Quang & Skreiberg, Øyvind, 2017. "Comparative study on the thermal degradation of dry- and wet-torrefied woods," Applied Energy, Elsevier, vol. 185(P2), pages 1051-1058.
    5. Martínez, E. & Jiménez, E. & Blanco, J. & Sanz, F., 2010. "LCA sensitivity analysis of a multi-megawatt wind turbine," Applied Energy, Elsevier, vol. 87(7), pages 2293-2303, July.
    6. Singh, P. & Déparrois, N. & Burra, K.G. & Bhattacharya, S. & Gupta, A.K., 2019. "Energy recovery from cross-linked polyethylene wastes using pyrolysis and CO2 assisted gasification," Applied Energy, Elsevier, vol. 254(C).
    7. Beauson, J. & Laurent, A. & Rudolph, D.P. & Pagh Jensen, J., 2022. "The complex end-of-life of wind turbine blades: A review of the European context," Renewable and Sustainable Energy Reviews, Elsevier, vol. 155(C).
    8. Sobek, S. & Zeng, K. & Werle, S. & Junga, R. & Sajdak, M., 2022. "Brewer's spent grain pyrolysis kinetics and evolved gas analysis for the sustainable phenolic compounds and fatty acids recovery potential," Renewable Energy, Elsevier, vol. 199(C), pages 157-168.
    9. Gennitsaris, Stavros & Sagani, Angeliki & Sofianopoulou, Stella & Dedoussis, Vassilis, 2023. "Integrated LCA and DEA approach for circular economy-driven performance evaluation of wind turbine end-of-life treatment options," Applied Energy, Elsevier, vol. 339(C).
    10. Sobek, Szymon & Werle, Sebastian, 2020. "Isoconversional determination of the apparent reaction models governing pyrolysis of wood, straw and sewage sludge, with an approach to rate modelling," Renewable Energy, Elsevier, vol. 161(C), pages 972-987.
    11. Mumtaz, Hamza & Sobek, Szymon & Sajdak, Marcin & Muzyka, Roksana & Werle, Sebastian, 2023. "An experimental investigation and process optimization of the oxidative liquefaction process as the recycling method of the end-of-life wind turbine blades," Renewable Energy, Elsevier, vol. 211(C), pages 269-278.
    12. Ciuta, Simona & Patuzzi, Francesco & Baratieri, Marco & Castaldi, Marco J., 2018. "Enthalpy changes during pyrolysis of biomass: Interpretation of intraparticle gas sampling," Applied Energy, Elsevier, vol. 228(C), pages 1985-1993.
    13. Park, Ki-Bum & Jeong, Yong-Seong & Kim, Joo-Sik, 2019. "Activator-assisted pyrolysis of polypropylene," Applied Energy, Elsevier, vol. 253(C), pages 1-1.
    14. Szufa, S. & Piersa, P. & Junga, R. & Błaszczuk, A. & Modliński, N. & Sobek, S. & Marczak-Grzesik, M. & Adrian, Ł. & Dzikuć, M., 2023. "Numerical modeling of the co-firing process of an in situ steam-torrefied biomass with coal in a 230 MW industrial-scale boiler," Energy, Elsevier, vol. 263(PE).
    15. Pecchi, Matteo & Patuzzi, Francesco & Benedetti, Vittoria & Di Maggio, Rosa & Baratieri, Marco, 2020. "Kinetic analysis of hydrothermal carbonization using high-pressure differential scanning calorimetry applied to biomass," Applied Energy, Elsevier, vol. 265(C).
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