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A comprehensive pathway on the determination of the kinetic triplet and the reaction mechanism of brewer's spent grain and beech wood chips pyrolysis

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  • Dessì, Federica
  • Mureddu, Mauro
  • Ferrara, Francesca
  • Pettinau, Alberto

Abstract

This study paves a strategy to better understand the thermal conversion of biomass residues. In particular, a comprehensive study to determine the multi-step reaction model to describe the pyrolysis process of brewer's spent grain from Pilsner (PBSG) and Weizen (WBSG) malts, and beech wood chips (BWC) has been presented.

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  • Dessì, Federica & Mureddu, Mauro & Ferrara, Francesca & Pettinau, Alberto, 2022. "A comprehensive pathway on the determination of the kinetic triplet and the reaction mechanism of brewer's spent grain and beech wood chips pyrolysis," Renewable Energy, Elsevier, vol. 190(C), pages 548-559.
  • Handle: RePEc:eee:renene:v:190:y:2022:i:c:p:548-559
    DOI: 10.1016/j.renene.2022.03.084
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    1. 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.
    2. Jin, Yanghao & Liu, Sirui & Shi, Ziyi & Wang, Shule & Wen, Yuming & Zaini, Ilman Nuran & Tang, Chuchu & Hedenqvist, Mikael S. & Lu, Xincheng & Kawi, Sibudjing & Wang, Chi-Hwa & Jiang, Jianchun & Jönss, 2024. "A novel three-stage ex-situ catalytic pyrolysis process for improved bio-oil yield and quality from lignocellulosic biomass," Energy, Elsevier, vol. 295(C).

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