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Charcoal productivity and quality parameters for reliable classification of Eucalyptus clones from Brazilian energy forests

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  • de Paula Protásio, Thiago
  • Roque Lima, Michael Douglas
  • Scatolino, Mário Vanoli
  • Silva, Alanna Barishinikov
  • Rodrigues de Figueiredo, Izabel Cristina
  • Gherardi Hein, Paulo Ricardo
  • Trugilho, Paulo Fernando

Abstract

Charcoal productivity in brick kilns is controlled by factors such as, the pyrolysis process and kind of raw material, which impose a challenge for the selection of the best clones. This study investigates the tree growth characteristics as a parameter for the improvement of selection and classification of Eucalyptus clones, with the quality and availability required by the steel industry, in addition to the properties of wood and charcoal. Parameters as the diameter at breast height (DBH), total height, and wood basic density (WBD) of fourteen clones were measured. Wood specimens were converted to charcoal in laboratory conditions and the carbonization yields, charcoal properties, and the volume of wood required to produce 1 t of charcoal (specific consumption) were evaluated. Eucalyptus clones with DBH ≥15.1 cm, WBD ≥560 kg/m3, and gravimetric yield ≥35% provided low specific consumption (<5.1 m³/t), increased brick kilns productivity, and resulted in denser charcoals (380 kg/m3). Clones with WBD ≤500 kg/m3 are not recommended for steel charcoal production. The E. urophylla x E. camaldulensis hybrid (clone 1004), E. urophylla (clone 1009), and E. grandis hybrid (clone 1039) highlighted due to the productivity, bioreducer quality, and specific consumption (<5.2 m³/t).

Suggested Citation

  • de Paula Protásio, Thiago & Roque Lima, Michael Douglas & Scatolino, Mário Vanoli & Silva, Alanna Barishinikov & Rodrigues de Figueiredo, Izabel Cristina & Gherardi Hein, Paulo Ricardo & Trugilho, Pau, 2021. "Charcoal productivity and quality parameters for reliable classification of Eucalyptus clones from Brazilian energy forests," Renewable Energy, Elsevier, vol. 164(C), pages 34-45.
  • Handle: RePEc:eee:renene:v:164:y:2021:i:c:p:34-45
    DOI: 10.1016/j.renene.2020.09.057
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    References listed on IDEAS

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    1. Baker, J.S. & Wade, C.M. & Sohngen, B.L. & Ohrel, S. & Fawcett, A.A., 2019. "Potential complementarity between forest carbon sequestration incentives and biomass energy expansion," Energy Policy, Elsevier, vol. 126(C), pages 391-401.
    2. Silva, F.T.M. & Ataíde, C.H., 2019. "Valorization of eucalyptus urograndis wood via carbonization: Product yields and characterization," Energy, Elsevier, vol. 172(C), pages 509-516.
    3. Deboni, Tamires Liza & Simioni, Flávio José & Brand, Martha Andreia & Lopes, Gisele Paim, 2019. "Evolution of the quality of forest biomass for energy generation in a cogeneration plant," Renewable Energy, Elsevier, vol. 135(C), pages 1291-1302.
    4. Wang, Chang’an & Zhang, Xiaoming & Liu, Yinhe & Che, Defu, 2012. "Pyrolysis and combustion characteristics of coals in oxyfuel combustion," Applied Energy, Elsevier, vol. 97(C), pages 264-273.
    5. Bentsen, Niclas Scott & Jack, Michael W. & Felby, Claus & Thorsen, Bo Jellesmark, 2014. "Allocation of biomass resources for minimising energy system greenhouse gas emissions," Energy, Elsevier, vol. 69(C), pages 506-515.
    6. Pereira, Emanuele Graciosa & Martins, Márcio Arêdes & Pecenka, Ralf & Carneiro, Angélica de Cássia O., 2017. "Pyrolysis gases burners: Sustainability for integrated production of charcoal, heat and electricity," Renewable and Sustainable Energy Reviews, Elsevier, vol. 75(C), pages 592-600.
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    Cited by:

    1. Massuque, Jonas & Roque Lima, Michael Douglas & Müller da Silva, Paulo Henrique & de Paula Protásio, Thiago & Trugilho, Paulo Fernando, 2023. "Potential of charcoal from non-commercial Corymbia and Eucalyptus wood for use in the steel industry," Renewable Energy, Elsevier, vol. 211(C), pages 179-187.
    2. Marcin Sajdak & Roksana Muzyka & Grzegorz Gałko & Ewelina Ksepko & Monika Zajemska & Szymon Sobek & Dariusz Tercki, 2022. "Actual Trends in the Usability of Biochar as a High-Value Product of Biomass Obtained through Pyrolysis," Energies, MDPI, vol. 16(1), pages 1-30, December.
    3. Lima, Michael Douglas Roque & Bufalino, Lina & Scatolino, Mário Vanoli & Hein, Paulo Ricardo Gherardi & Carneiro, Angélica de Cássia Oliveira & Trugilho, Paulo Fernando & Protásio, Thiago de Paula, 2023. "Segregating Amazonia logging wastes from sustainable forest management improves carbonization in brick kilns," Renewable Energy, Elsevier, vol. 211(C), pages 772-788.

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