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dc.contributor.authorDe, Silma-
dc.contributor.authorPessoa Júnior, Wanison André Gil-
dc.contributor.authorSá, Ingrity S. C.-
dc.contributor.authorTakeno, Mitsuo Lopes-
dc.contributor.authorNobre, Francisco Xavier-
dc.contributor.authorPinheiro, William-
dc.contributor.authorManzato, Lizandro-
dc.contributor.authorIglauer, Stefan-
dc.contributor.authorFreitas, Flávio A. De-
dc.date.accessioned2020-07-03T21:50:46Z-
dc.date.available2020-07-03T21:50:46Z-
dc.date.issued2020-
dc.identifier.urihttps://repositorio.inpa.gov.br/handle/1/23267-
dc.description.abstractHomogeneous catalysts used for biodiesel synthesis have several limitations, including non-recoverability/reusability, saponification, emulsification, equipment corrosion, and environmental pollution. To overcome these limitations, we synthesized a novel catalyst via calcination of pineapple leaves waste. This catalyst was characterized by X-ray powder diffraction, X-ray fluorescence, Fourier transform infrared spectroscopy, thermogravimetric analysis, scanning electron microscopy, and soluble alkalinity measurements. The catalyst's activity with regards to soybean oil transesterification was analyzed, and multiple process parameters (temperature, catalyst amount, reaction time, and methanol:oil molar ratio) were examined. A high catalytic activity, probably related to the 85 wt% content of alkali/alkali metals (K, Ca and Mg), was observed after a 30 min reaction time, 60 °C, 4 wt% of catalyst, oil to methanol molar ratio of 1:40, reaching an oil to biodiesel conversion above 98%. We conclude that the novel catalyst presented here is efficient, cost-effective, and sustainable, while simultaneously abundant waste is reduced. © 2020 Elsevier Ltden
dc.language.isoenpt_BR
dc.relation.ispartofVolume 312pt_BR
dc.rightsRestrito*
dc.subjectBiodieselen
dc.subjectCost Effectivenessen
dc.subjectEmulsificationen
dc.subjectFourier transform infrared spectroscopyen
dc.subjectMethanolen
dc.subjectMolar ratioen
dc.subjectPollution induced corrosionen
dc.subjectMicroscopy, Electron, Scanningen
dc.subjectSoybean Oilen
dc.subjectSynthetic fuelsen
dc.subjectThermogravimetric analysisen
dc.subjectX ray powder diffractionen
dc.subjectX raysen
dc.subjectBiodiesel synthesisen
dc.subjectCost effectiveen
dc.subjectEnvironmental Pollutionsen
dc.subjectHomogeneous catalysten
dc.subjectMultiple processen
dc.subjectNovel catalystsen
dc.subjectSolid base catalystsen
dc.subjectX ray fluorescenceen
dc.subjectCatalyst Activityen
dc.subjectBiodieselen
dc.subjectCalcium Ionen
dc.subjectFossil Fuelen
dc.subjectManganeseen
dc.subjectPotassiumen
dc.subjectAlkalinityen
dc.subjectashen
dc.subjectBiofuelen
dc.subjectCatalysisen
dc.subjectcatalysten
dc.subjectchemical alterationen
dc.subjectFruiten
dc.subjectLeafen
dc.subjectMethanolen
dc.subjectSolubilityen
dc.subjectSoybeanen
dc.subjectAlkalinityen
dc.subjectashen
dc.subjectcatalysten
dc.subjectCost Effectiveness Analysisen
dc.subjectEnergyen
dc.subjectFourier transform infrared spectroscopyen
dc.subjectfruit wasteen
dc.subjectNonhumanen
dc.subjectpineappleen
dc.subjectPlant Leafen
dc.subjectPriority Journalen
dc.subjectreaction timeen
dc.subjectRecyclingen
dc.subjectMicroscopy, Electron, Scanningen
dc.subjectSynthesisen
dc.subjectTemperatureen
dc.subjectthermogravimetryen
dc.subjectTimeen
dc.subjectX-ray Diffractionen
dc.subjectX ray fluorescenceen
dc.subjectAnanas Comosusen
dc.subjectGlycine Maxen
dc.subjectenpt_BR
dc.titlePineapple (Ananás comosus) leaves ash as a solid base catalyst for biodiesel synthesisen
dc.typeArtigopt_BR
dc.identifier.doi10.1016/j.biortech.2020.123569-
dc.publisher.journalBioresource Technologypt_BR
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