2022
DOI: 10.1021/acs.energyfuels.2c01475
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Evolution of Stable Free Radicals during Bio-Oil Pyrolysis and Its Relation to Coke Formation: An in Situ EPR Study

Abstract: Thermal–chemical conversion is needed to improve the quality of bio-oil. When bio-oil is heated, it polymerizes to form coke, causing severe problems to its upgrading processes and thus hindering its further utilization. As stable free radicals are generated and attached to coke during the active radical polymerization of bio-oil, figuring out the evolution of stable free radicals is a key to revealing the coke formation mechanisms. In this study, bio-oil pyrolysis was conducted between 300 and 600 °C, coupled… Show more

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Cited by 7 publications
(2 citation statements)
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“…For the pyrolysis of polymers, the reaction can be expressed as A(S) → B(S) + C(g) 45 . For pyrolysis, the conversion rate of a solid sample can be defined as Equation (). α=m0mm0mnormalf, where m 0 and m f are the initial and final mass of the sample, respectively; m denotes the mass of the sample at a certain temperature T .…”
Section: Resultsmentioning
confidence: 99%
See 1 more Smart Citation
“…For the pyrolysis of polymers, the reaction can be expressed as A(S) → B(S) + C(g) 45 . For pyrolysis, the conversion rate of a solid sample can be defined as Equation (). α=m0mm0mnormalf, where m 0 and m f are the initial and final mass of the sample, respectively; m denotes the mass of the sample at a certain temperature T .…”
Section: Resultsmentioning
confidence: 99%
“…B(S) + C(g). 45 For pyrolysis, the conversion rate of a solid sample can be defined as Equation (8).…”
Section: Analysis Of Pyrolysis Kineticsmentioning
confidence: 99%