Optimizing propylene production via acetone hydrodeoxygenation: Insights from catalytic studies with Cu/γ-Al2O3 and Hβ zeolite

dc.contributor.authorTrindade A.C.M.
dc.contributor.authorEnzweiler, Heveline
dc.contributor.authorSalau N.P.G.
dc.date.accessioned2024-11-22T11:20:43Z
dc.date.issued2025
dc.description.abstract© 2024 Elsevier B.V.Propylene is a crucial light olefin in the petrochemical industry and can be produced via acetone hydrodeoxygenation, which involves two sequential reactions: first, acetone undergoes hydrogenation catalyzed by metallic sites, followed by the dehydration of the resulting isopropanol catalyzed by acidic sites. In this study, propylene production through acetone hydrodeoxygenation was investigated using a physical mixture of 35 wt% Cu/γ-Al2O3 and Hβ zeolite to investigate how various reaction parameters affect acetone conversion and propylene yield. Using the experimental design methodology, empirical models were developed to correlate acetone conversion (Xacet) and propylene yield (Yprop) with the ratio of 35 wt% Cu/γ-Al2O3 to Hβ (CR), total catalyst weight (Cw), hydrogen volumetric flow rate (FH2) and reaction temperature (T). The maximum propylene yield achieved in the catalytic tests was 73.46 %. A long-term test demonstrated the catalyst's reusability, remaining active even after 22 hours of reaction with only a slight decrease in propylene yield. Analysis of the experimental data revealed that increasing T and Cw positively affected propylene yield, whereas higher CR and FH2 had negative effects. According to the Pareto chart, reaction temperature was the most influential variable for propylene yield, followed by CR, FH2 and Cw. For acetone conversion, the order of significance among the variables was T > CR > Cw > FH2.
dc.identifier.doi10.1016/j.cattod.2024.115095
dc.identifier.issnNone
dc.identifier.urihttps://repositorio.udesc.br/handle/UDESC/1365
dc.relation.haspart445
dc.relation.ispartofCatalysis Today
dc.titleOptimizing propylene production via acetone hydrodeoxygenation: Insights from catalytic studies with Cu/γ-Al2O3 and Hβ zeolite
dc.typeArtigo
dspace.entity.typePublication
local.description.rightsAcesso restrito
local.scopus.citations0
local.scopus.eid2-s2.0-85206453242
local.scopus.subjectAcetone conversion
local.scopus.subjectCopper-based catalysts
local.scopus.subjectEmpirical model
local.scopus.subjectHydrodeoxygenation
local.scopus.subjectHβ Zeolite
local.scopus.subjectPropylene production
local.scopus.subjectPropylene yield
local.scopus.subjectReaction parameters
local.scopus.subjectReaction temperature
local.scopus.subject]+ catalyst
local.scopus.updated2024-11-12
local.scopus.urlhttps://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85206453242&origin=inward
local.subjectenAcetone
local.subjectenCopper-based catalysts
local.subjectenEmpirical modeling
local.subjectenPropylene
local.subjectenReaction parameters
local.subjectenZeolites
relation.isAuthorOfPublication1d9f30d7-0883-4232-a61c-78b370ab2b5f
relation.isAuthorOfPublication.latestForDiscovery1d9f30d7-0883-4232-a61c-78b370ab2b5f

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