TY - JOUR
T1 - Detailed kinetic mechanism of gas-phase reactions of volatiles released from biomass pyrolysis
AU - Debiagi, Paulo Eduardo Amaral
AU - Gentile, Giancarlo
AU - Pelucchi, Matteo
AU - Frassoldati, Alessio
AU - Cuoci, Alberto
AU - Faravelli, Tiziano
AU - Ranzi, Eliseo
N1 - Funding Information:
The authors gratefully acknowledge the partial financial support for this research provided by the European Union under the Horizon 2020 research and innovation programme (Residue2Heat project, G.A. No 654650 ).
Funding Information:
P.D. gratefully acknowledges the financial support from CAPES Foundation , Ministry of Education of Brazil–Science without Borders Mobility Program–Full PhD Scholarship Process No. 10131/13-2 .
Publisher Copyright:
© 2016 Elsevier Ltd
PY - 2016/10/1
Y1 - 2016/10/1
N2 - Comprehensive chemical models to describe the behavior of biomass pyrolysis, gasification and combustion are crucial for the simulation and design of thermochemical processes of ligno-cellulosic materials. Despite this importance, reliable and predictive models are still not well known. The original aspect of this work is to present a comprehensive and predictive model of pyrolysis, gasification, and combustion, starting from biomass characterization, through the description of released volatiles at the particle scale, until the effect of the secondary gas-phase reactions at the reactor scale. All these aspects can play a relevant role in the biomass thermo-valorization processes. Most of released species from biomass devolatilization are oxygenated hydrocarbons. This study aims at identifying some reference rate parameters, based on analogy and thermochemistry rules, for the different reaction classes. Once rate rules are defined, they allow an easy extension to analogous compounds. In this way, the kinetic mechanism already developed for jet and diesel fuels is extended to the new tar species released by biomasses. Despite unavoidable approximations when the interest is also at the reactor scale, this model is the only one, to our knowledge, able to describe the whole process from biomass to final products, in a predictive and satisfactory way.
AB - Comprehensive chemical models to describe the behavior of biomass pyrolysis, gasification and combustion are crucial for the simulation and design of thermochemical processes of ligno-cellulosic materials. Despite this importance, reliable and predictive models are still not well known. The original aspect of this work is to present a comprehensive and predictive model of pyrolysis, gasification, and combustion, starting from biomass characterization, through the description of released volatiles at the particle scale, until the effect of the secondary gas-phase reactions at the reactor scale. All these aspects can play a relevant role in the biomass thermo-valorization processes. Most of released species from biomass devolatilization are oxygenated hydrocarbons. This study aims at identifying some reference rate parameters, based on analogy and thermochemistry rules, for the different reaction classes. Once rate rules are defined, they allow an easy extension to analogous compounds. In this way, the kinetic mechanism already developed for jet and diesel fuels is extended to the new tar species released by biomasses. Despite unavoidable approximations when the interest is also at the reactor scale, this model is the only one, to our knowledge, able to describe the whole process from biomass to final products, in a predictive and satisfactory way.
KW - Bio-oil
KW - Biomass gasification
KW - Biomass pyrolysis
KW - Fast pyrolysis
KW - Lumped mechanism
KW - Tars
UR - http://www.scopus.com/inward/record.url?scp=84977278829&partnerID=8YFLogxK
U2 - 10.1016/j.biombioe.2016.06.015
DO - 10.1016/j.biombioe.2016.06.015
M3 - Article
AN - SCOPUS:84977278829
SN - 0961-9534
VL - 93
SP - 60
EP - 71
JO - Biomass and Bioenergy
JF - Biomass and Bioenergy
ER -