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Pyrolysis kinetics of short rotation coppice poplar biomass

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  • Rego, Filipe
  • Soares Dias, Ana P.
  • Casquilho, Miguel
  • Rosa, Fátima C.
  • Rodrigues, Abel

Abstract

Woody biomass can be converted into green fuels by advanced conversion technologies such as gasification and pyrolysis. Due to the complexity of woody biomass, the thermochemical decomposition mechanisms are complex and the knowledge of pyrolysis kinetics is mandatory for optimization of the process and reactor design of commercial scale biorefineries. Pyrolysis kinetics of short rotation coppice (SRC) poplar biomass (nine different clones) was studied using non-isothermal thermogravimetry. By using differential thermogravimetry data, obtained for heating rates of 10–50 K/min, the Kissinger model-free methodology showed activation energies in the range 108–320 kJ/mol, similar to those reported in the literature for cellulose pyrolysis. Isoconversional approaches of Flynn-Wall-Ozawa (FWO) and Kissinger-Akahira-Sunose (KAS) obtained similar values of activation energy (81–301 kJ/mol and 90–306 kJ/mol, respectively. The kinetics parameters obtained by the FWO and KAS methods were higher than data reported in the literature for other biomasses, and a correlation between activation energy and the lignin content of the biomass samples was found. The pyrolysis activation energy seems to have no significant effect on the pyrolysis product yields, probably because, under the tested conditions (fixed bed reactor, 773 K), pyrolysis was controlled by mass and/or heat transfer limitations instead of kinetics control.

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  • Rego, Filipe & Soares Dias, Ana P. & Casquilho, Miguel & Rosa, Fátima C. & Rodrigues, Abel, 2020. "Pyrolysis kinetics of short rotation coppice poplar biomass," Energy, Elsevier, vol. 207(C).
  • Handle: RePEc:eee:energy:v:207:y:2020:i:c:s0360544220312986
    DOI: 10.1016/j.energy.2020.118191
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    References listed on IDEAS

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    1. Slopiecka, Katarzyna & Bartocci, Pietro & Fantozzi, Francesco, 2012. "Thermogravimetric analysis and kinetic study of poplar wood pyrolysis," Applied Energy, Elsevier, vol. 97(C), pages 491-497.
    2. Yao, Xiwen & Zhao, Zhicheng & Li, Jishuo & Zhang, Bohan & Zhou, Haodong & Xu, Kaili, 2020. "Experimental investigation of physicochemical and slagging characteristics of inorganic constituents in ash residues from gasification of different herbaceous biomass," Energy, Elsevier, vol. 198(C).
    3. Xiao, Ruirui & Yang, Wei & Cong, Xingshun & Dong, Kai & Xu, Jie & Wang, Dengfeng & Yang, Xin, 2020. "Thermogravimetric analysis and reaction kinetics of lignocellulosic biomass pyrolysis," Energy, Elsevier, vol. 201(C).
    4. Soares Dias, Ana Paula & Rego, Filipe & Fonseca, Frederico & Casquilho, Miguel & Rosa, Fátima & Rodrigues, Abel, 2019. "Catalyzed pyrolysis of SRC poplar biomass. Alkaline carbonates and zeolites catalysts," Energy, Elsevier, vol. 183(C), pages 1114-1122.
    5. Goffé, Jonathan & Ferrasse, Jean-Henry, 2019. "Stoichiometry impact on the optimum efficiency of biomass conversion to biofuels," Energy, Elsevier, vol. 170(C), pages 438-458.
    6. Cai, Junmeng & Xu, Di & Dong, Zhujun & Yu, Xi & Yang, Yang & Banks, Scott W. & Bridgwater, Anthony V., 2018. "Processing thermogravimetric analysis data for isoconversional kinetic analysis of lignocellulosic biomass pyrolysis: Case study of corn stalk," Renewable and Sustainable Energy Reviews, Elsevier, vol. 82(P3), pages 2705-2715.
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