Repositorio Institucional
Repositorio Institucional
CONICET Digital
  • Inicio
  • EXPLORAR
    • AUTORES
    • DISCIPLINAS
    • COMUNIDADES
  • Estadísticas
  • Novedades
    • Noticias
    • Boletines
  • Ayuda
    • General
    • Datos de investigación
  • Acerca de
    • CONICET Digital
    • Equipo
    • Red Federal
  • Contacto
JavaScript is disabled for your browser. Some features of this site may not work without it.
  • INFORMACIÓN GENERAL
  • RESUMEN
  • ESTADISTICAS
 
Artículo

Designing of spiral wound nanofiltration multistage process for oil concentration and solvent recovery from soybean oil/n-hexane miscella

Firman, Leticia RaquelIcon ; Ochoa, Nelio ArielIcon ; Marchese, JoseIcon ; Pagliero, Cecilia LilianaIcon
Fecha de publicación: 12/2020
Editorial: Institution of Chemical Engineers
Revista: Chemical Engineering Research & Design
ISSN: 0263-8762
Idioma: Inglés
Tipo de recurso: Artículo publicado
Clasificación temática:
Ingeniería de Procesos Químicos

Resumen

The present work demonstrates the potential of oil/n-hexane miscella separation from a local factory via a hybrid nanofiltration-evaporation process. In the membrane separation, solvent resistance nanofiltration (SRNF) membranes lab-made of polyvinylidene fluoride (PVDF) as support, poly-dimethylsiloxane (SI) or cellulose acetate (CA) as coating materials and a commercial composite membrane were used. To perform this study, a representative spiral-wound (SW) module made-up with the membranes previously mentioned was employed. For miscella mass transfer through the SW module, a plug-cross-mixing flow (PCMF) model was used. From experimental miscella permselectivity data at T = 30 °C and Δp = 20 bar, an analytical final expression of mass balance was obtained which correlated the retentate oil concentration with the membrane area. The multistage process of such membranes was integrated by a number of single-stage in series. In the multistage membrane performance evaluation, several restrictions were imposed on the model considering the operational conditions of the local factory that uses an evaporation and steam stripping process. Seven stage (total membrane area 702 m2) using PVDF-10% SI membrane gave the best oil/n-hexane separation effectiveness. From this, a hybrid SRNF-evaporation process was proposed in which the selected membrane multistage process replaced the first and the second evaporators. The permeate stream rich in n-hexane (90.5 w%) was fed to the section of the expeller in which the oil was depleted, and the retentate stream enriched in oil (86.7 w%) was pumped to the third-stage evaporator and strippers, where the oil was concentrated to >99 w%. The overall energy demand was significantly reduced (≈50%) and there was around 60% less consumption of cooling water and steam by the SRNF-assisted processes in comparison with the conventional factory evaporation process.
Palabras clave: MEMBRANE , MISCELLA SOYBEAN OIL/N-HEXANE , MULTISTAGE , NANOFILTRATION , RECOVERY SOLVENT
Ver el registro completo
 
Archivos asociados
Tamaño: 1.876Mb
Formato: PDF
.
Solicitar
Licencia
info:eu-repo/semantics/restrictedAccess Excepto donde se diga explícitamente, este item se publica bajo la siguiente descripción: Creative Commons Attribution-NonCommercial-ShareAlike 2.5 Unported (CC BY-NC-SA 2.5)
Identificadores
URI: http://hdl.handle.net/11336/125888
URL: https://www.sciencedirect.com/science/article/abs/pii/S0263876220304792
DOI: http://dx.doi.org/10.1016/j.cherd.2020.09.015
Colecciones
Articulos (IITEMA)
Articulos de INSTITUTO DE INVESTIGACIONES EN TECNOLOGIAS ENERGETICAS Y MATERIALES AVANZADOS
Articulos(INFAP)
Articulos de INST. DE FISICA APLICADA "DR. JORGE ANDRES ZGRABLICH"
Citación
Firman, Leticia Raquel; Ochoa, Nelio Ariel; Marchese, Jose; Pagliero, Cecilia Liliana; Designing of spiral wound nanofiltration multistage process for oil concentration and solvent recovery from soybean oil/n-hexane miscella; Institution of Chemical Engineers; Chemical Engineering Research & Design; 164; 12-2020; 46-58
Compartir
Altmétricas
 

Enviar por e-mail
Separar cada destinatario (hasta 5) con punto y coma.
  • Facebook
  • X Conicet Digital
  • Instagram
  • YouTube
  • Sound Cloud
  • LinkedIn

Los contenidos del CONICET están licenciados bajo Creative Commons Reconocimiento 2.5 Argentina License

https://www.conicet.gov.ar/ - CONICET

Inicio

Explorar

  • Autores
  • Disciplinas
  • Comunidades

Estadísticas

Novedades

  • Noticias
  • Boletines

Ayuda

Acerca de

  • CONICET Digital
  • Equipo
  • Red Federal

Contacto

Godoy Cruz 2290 (C1425FQB) CABA – República Argentina – Tel: +5411 4899-5400 repositorio@conicet.gov.ar
TÉRMINOS Y CONDICIONES