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Kinetic modeling of hemicellulose-derived biomass hydrolysis under high pressure CO2–H2O mixture technology

dc.contributor.authorRelvas, F.
dc.contributor.authorMorais, Ana Rita C.
dc.contributor.authorLukasik, Rafal M.
dc.date.accessioned2016-03-11T17:15:38Z
dc.date.available2016-03-11T17:15:38Z
dc.date.issued2015
dc.description.abstractThis work is focused on the development of kinetic models of hydrolysis of hemicellulose-derived wheat straw under high-pressure CO2.H2O technology. The experiments were performed at fixed temperature (180.C), varying pressure from 0 (water-only reaction), 20, 35 to 50 bar of initial CO2 pressure and reaction times varied from 0 to 45 min. The three accurate kinetic models allowed to describe the effect of reaction conditions mainly hitherto not studied CO2 pressure and reaction time on the concentration of intermediate compounds such as xylose and arabinose in both oligomer and monomer form as well as final compounds e.g. acetic acid, furfural and other degradation products. Modeling demonstrated that addition of CO2 plays an important role in kinetics study of hemicellulose fraction hydrolysis being the fastest step the polysaccharides f hydrolysis into sugars in oligomer form. Even negligible amount of CO2 (20 bar of initial pressure) improves the initial kinetic constant of aforementioned reaction by almost 40% in comparison to water-only process. Depletion of oligosaccharides ' concentration and counterbalanced production of monomer sugars were found for longer reaction times, achieving maximum faster for CO2 assisted than CO2 free processes. Moreover, the increase of initial CO2 pressure demonstrated to be highly efficient in enhancement of the kinetic constants of all reactions occurring in the liquors. The developed models demonstrated a good fitting to the experimental data albeit the complex composition of raw material as well as the multistep analytical process.pt_PT
dc.identifier.citationRelvas, F.; Morais, A.R.; Bogel-Lukasik, R. - Kinetic modeling of hemicellulose-derived biomass hydrolysis under high pressure CO2–H2O mixture technology. In: Journal of Supercritical Fluids, 2015, Vol. 99, p. 95-102pt_PT
dc.identifier.doi10.1016/j.supflu.2015.01.022pt_PT
dc.identifier.issn0896-8446
dc.identifier.urihttp://hdl.handle.net/10400.9/2878
dc.language.isoengpt_PT
dc.peerreviewedyespt_PT
dc.publisherElsevierpt_PT
dc.relation.publisherversionhttp://dx.doi.org/10.1016/j.supflu.2015.01.022pt_PT
dc.subjectHydrolysispt_PT
dc.subjectLignocellulosic biomasspt_PT
dc.subjectXylanpt_PT
dc.subjectHemicellulosept_PT
dc.subjectKineticspt_PT
dc.subjectOligosaccharidespt_PT
dc.subjectCarbon dioxidept_PT
dc.titleKinetic modeling of hemicellulose-derived biomass hydrolysis under high pressure CO2–H2O mixture technologypt_PT
dc.typejournal article
dspace.entity.typePublication
oaire.citation.endPage102pt_PT
oaire.citation.startPage95pt_PT
oaire.citation.titleJournal of Supercritical Fluidspt_PT
oaire.citation.volume99pt_PT
person.familyNameMorais
person.familyNameLukasik
person.givenNameAna
person.givenNameRafal
person.identifier.orcid0000-0002-3216-1533
person.identifier.orcid0000-0002-7805-5744
person.identifier.ridJ-9490-2013
person.identifier.ridA-6315-2011
person.identifier.scopus-author-id6506737268
rcaap.rightsopenAccesspt_PT
rcaap.typearticlept_PT
relation.isAuthorOfPublication205ab6f0-709e-43f1-aa97-b01ebb62ac4e
relation.isAuthorOfPublication6a7fdbd9-7961-407e-88d0-15d175ea711d
relation.isAuthorOfPublication.latestForDiscovery6a7fdbd9-7961-407e-88d0-15d175ea711d

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