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Geometrical characteristics of sugarcane bagasse for being used as fuel in fluidized bed technologies

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  • Pérez, Nestor Proenza
  • Pedroso, Daniel Travieso
  • Machin, Einara Blanco
  • Antunes, Julio Santana
  • Tuna, Celso Eduardo
  • Silveira, José Luz

Abstract

Sugarcane bagasse is used as energy source in the sugar cane industry. An appropriate characterization of their physical and morphological properties is vitally important for their use in the gasification and combustion processes. This work makes a study of the size and shape distribution of the bagasse generated in a sugarcane mill based upon two important factors that influence their physical properties, such as aspect ratio (AR) and sphericity. The distribution of the grain sizes has been determined for the analyzed samples; the shapes of the particles has been determined by a manual method and through an image-analysis method, using the ImageJ software. It has been observed that sugarcane bagasse has a larger length than the other analyzed biomasses, with an almost similar width. The aspect ratio was between 2.14 and 5.5 for all the studied size ranges (9.5–0.15 mm). For particles with diameters smaller than 0.3 mm, the aspect ratio has a similar behavior to the other biomasses, with a reported value of 2.5. The determined sphericity was between 0.27 and 0.558, with a mean value of 0.397.

Suggested Citation

  • Pérez, Nestor Proenza & Pedroso, Daniel Travieso & Machin, Einara Blanco & Antunes, Julio Santana & Tuna, Celso Eduardo & Silveira, José Luz, 2019. "Geometrical characteristics of sugarcane bagasse for being used as fuel in fluidized bed technologies," Renewable Energy, Elsevier, vol. 143(C), pages 1210-1224.
  • Handle: RePEc:eee:renene:v:143:y:2019:i:c:p:1210-1224
    DOI: 10.1016/j.renene.2019.05.082
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    References listed on IDEAS

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    1. Antonio Bizzo, Waldir & Lenço, Paulo César & Carvalho, Danilo José & Veiga, João Paulo Soto, 2014. "The generation of residual biomass during the production of bio-ethanol from sugarcane, its characterization and its use in energy production," Renewable and Sustainable Energy Reviews, Elsevier, vol. 29(C), pages 589-603.
    2. Sindhu, Raveendran & Gnansounou, Edgard & Binod, Parameswaran & Pandey, Ashok, 2016. "Bioconversion of sugarcane crop residue for value added products – An overview," Renewable Energy, Elsevier, vol. 98(C), pages 203-215.
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    4. Pedroso, Daniel Travieso & Machin, Einara Blanco & Proenza Pérez, Nestor & Braga, Lúcia Bollini & Silveira, José Luz, 2017. "Technical assessment of the Biomass Integrated Gasification/Gas Turbine Combined Cycle (BIG/GTCC) incorporation in the sugarcane industry," Renewable Energy, Elsevier, vol. 114(PB), pages 464-479.
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