Epoxidation of refined soy-bean oil by molecular oxygen. Influence of the variables. Kinetic study

The influences of temperature, concentration of catalyst and initial concentration of unsaturation on epoxide formation and esters from oleic and linoleic acids disappearance in liquid phase epoxidation reaction by molecular oxygen of soy-bean oil using molibdenyl-acetylacetonate as catalyst, has be...

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Main Authors: P. J. Martínez de la Cuesta, E. Rus Martínez, V. Román Cortés
Format: Article
Language:English
Published: Consejo Superior de Investigaciones Científicas 1991-02-01
Series:Grasas y Aceites
Subjects:
Online Access:http://grasasyaceites.revistas.csic.es/index.php/grasasyaceites/article/view/1276
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spelling doaj-88f1ba94a6024874ab7e33fb1de1993f2021-05-05T07:28:37ZengConsejo Superior de Investigaciones CientíficasGrasas y Aceites0017-34951988-42141991-02-01421384510.3989/gya.1991.v42.i1.12761253Epoxidation of refined soy-bean oil by molecular oxygen. Influence of the variables. Kinetic studyP. J. Martínez de la Cuesta0E. Rus Martínez1V. Román Cortés2Departamento de Ingeniería Química. Facultad de Ciencias, Universidad de MálagaDepartamento de Ingeniería Química. Facultad de Ciencias, Universidad de MálagaDepartamento de Ingeniería Química. Facultad de Ciencias, Universidad de MálagaThe influences of temperature, concentration of catalyst and initial concentration of unsaturation on epoxide formation and esters from oleic and linoleic acids disappearance in liquid phase epoxidation reaction by molecular oxygen of soy-bean oil using molibdenyl-acetylacetonate as catalyst, has been studied. From experimental data obtained by a complex factorial design, an equation for epoxide formation reaction rate as a function of temperature, catalyst concentration and unsaturation initial concentration were deduced. A kinetic model is proposed too and using a calculation program based on 4th Order Runge-Kutta numerical procedure to simulate the reactions that took place, the kinetic coefficients and activation energies that best fitted the calculated data to the experimental data were determined.http://grasasyaceites.revistas.csic.es/index.php/grasasyaceites/article/view/1276epoxidationkineticmolecular oxygensoybean oil
collection DOAJ
language English
format Article
sources DOAJ
author P. J. Martínez de la Cuesta
E. Rus Martínez
V. Román Cortés
spellingShingle P. J. Martínez de la Cuesta
E. Rus Martínez
V. Román Cortés
Epoxidation of refined soy-bean oil by molecular oxygen. Influence of the variables. Kinetic study
Grasas y Aceites
epoxidation
kinetic
molecular oxygen
soybean oil
author_facet P. J. Martínez de la Cuesta
E. Rus Martínez
V. Román Cortés
author_sort P. J. Martínez de la Cuesta
title Epoxidation of refined soy-bean oil by molecular oxygen. Influence of the variables. Kinetic study
title_short Epoxidation of refined soy-bean oil by molecular oxygen. Influence of the variables. Kinetic study
title_full Epoxidation of refined soy-bean oil by molecular oxygen. Influence of the variables. Kinetic study
title_fullStr Epoxidation of refined soy-bean oil by molecular oxygen. Influence of the variables. Kinetic study
title_full_unstemmed Epoxidation of refined soy-bean oil by molecular oxygen. Influence of the variables. Kinetic study
title_sort epoxidation of refined soy-bean oil by molecular oxygen. influence of the variables. kinetic study
publisher Consejo Superior de Investigaciones Científicas
series Grasas y Aceites
issn 0017-3495
1988-4214
publishDate 1991-02-01
description The influences of temperature, concentration of catalyst and initial concentration of unsaturation on epoxide formation and esters from oleic and linoleic acids disappearance in liquid phase epoxidation reaction by molecular oxygen of soy-bean oil using molibdenyl-acetylacetonate as catalyst, has been studied. From experimental data obtained by a complex factorial design, an equation for epoxide formation reaction rate as a function of temperature, catalyst concentration and unsaturation initial concentration were deduced. A kinetic model is proposed too and using a calculation program based on 4th Order Runge-Kutta numerical procedure to simulate the reactions that took place, the kinetic coefficients and activation energies that best fitted the calculated data to the experimental data were determined.
topic epoxidation
kinetic
molecular oxygen
soybean oil
url http://grasasyaceites.revistas.csic.es/index.php/grasasyaceites/article/view/1276
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AT erusmartinez epoxidationofrefinedsoybeanoilbymolecularoxygeninfluenceofthevariableskineticstudy
AT vromancortes epoxidationofrefinedsoybeanoilbymolecularoxygeninfluenceofthevariableskineticstudy
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