Your browser doesn't support javascript.
loading
Optimization of Biodiesel Production Process Using MoO3 Catalysts and Residual Oil: A Comprehensive Experimental 23 Study.
Silva, Adriano Lima da; Pereira, Helder de Lucena; Sales, Herbet Bezerra; Dionízio, Juliana Kelly; Alves, Mary Cristina Ferreira; Guedes, Danyelle Garcia; Luna, Carlos Bruno Barreto; Costa, Ana Cristina Figueiredo de Melo.
Afiliação
  • Silva ALD; Synthesis Laboratory of Ceramic Materials (LabSMaC), Graduate Program in Materials Science and Engineering (PPGCEMat), Federal University of Campina Grande (UFCG), Campina Grande 58429-900, Brazil.
  • Pereira HL; Synthesis Laboratory of Ceramic Materials (LabSMaC), Graduate Program in Materials Science and Engineering (PPGCEMat), Federal University of Campina Grande (UFCG), Campina Grande 58429-900, Brazil.
  • Sales HB; Synthesis Laboratory of Ceramic Materials (LabSMaC), Graduate Program in Materials Science and Engineering (PPGCEMat), Federal University of Campina Grande (UFCG), Campina Grande 58429-900, Brazil.
  • Dionízio JK; Synthesis Laboratory of Ceramic Materials (LabSMaC), Graduate Program in Materials Science and Engineering (PPGCEMat), Federal University of Campina Grande (UFCG), Campina Grande 58429-900, Brazil.
  • Alves MCF; Graduate Program in Chemistry (PPGQ), State University of Paraíba (UEPB), Campina Grande 58429-900, Brazil.
  • Guedes DG; Synthesis Laboratory of Ceramic Materials (LabSMaC), Graduate Program in Materials Science and Engineering (PPGCEMat), Federal University of Campina Grande (UFCG), Campina Grande 58429-900, Brazil.
  • Luna CBB; Materials Engineering Academic Unit, Polymer Processing Laboratory, Federal University of Campina Grande, Av. Aprígio Veloso, 882, Campina Grande 58429-900, Brazil.
  • Costa ACFM; Synthesis Laboratory of Ceramic Materials (LabSMaC), Graduate Program in Materials Science and Engineering (PPGCEMat), Federal University of Campina Grande (UFCG), Campina Grande 58429-900, Brazil.
Molecules ; 29(10)2024 May 20.
Article em En | MEDLINE | ID: mdl-38792264
ABSTRACT
The study aimed to utilize MoO3 catalysts, produced on a pilot scale via combustion reaction, to produce biodiesel from residual oil. Optimization of the process was conducted using a 23 experimental design. Structural characterization of the catalysts was performed through X-ray diffraction, fluorescence, Raman spectroscopy, and particle size distribution analyses. At the same time, thermal properties were examined via thermogravimetry and differential thermal analysis. Catalytic performance was assessed following process optimization. α-MoO3 exhibited a monophasic structure with orthorhombic phase, whereas α/h-MoO3 showed a biphasic structure. α-MoO3 had a larger crystallite size and higher crystallinity, with thermal stability observed up to certain temperatures. X-ray fluorescence confirmed molybdenum oxide predominance in the catalysts, with traces of iron oxide. Particle size distribution analyses revealed polymodal distributions attributed to structural differences. Both catalysts demonstrated activity under all conditions tested, with ester conversions ranging from 93% to 99%. The single-phase catalyst had a long life cycle and was reusable for six biodiesel production cycles. The experimental design proved to be predictive and significant, with the type of catalyst being the most influential variable. Optimal conditions included α-MoO3 catalyst, oil/alcohol ratio of 1/15, and a reaction time of 60 min, resulting in high biodiesel conversion rates and showcasing the viability of MoO3 catalysts in residual oil biodiesel production.
Palavras-chave

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article