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

Study on the aggregate motion for gas-liquid-solid agitated tank reactors design using radioactive particle tracking

Salierno, Gabriel LeonardoIcon ; Maestri, Mauricio LeonardoIcon ; Fraguío, María Sol; Picabea, Julia ValentinaIcon ; Cassanello, Miryan; De Blasio, Cataldo; Cardona, Maria AngelicaIcon ; Hojman, Daniel LeonardoIcon ; Somacal, Héctor Rubén
Fecha de publicación: 05/2022
Editorial: IOP Publishing
Revista: Measurement Science & Technology (print)
ISSN: 0957-0233
Idioma: Inglés
Tipo de recurso: Artículo publicado
Clasificación temática:
Otras Ingeniería Química

Resumen

This work provides a detailed study on the agitation rate influence on the solid motion within a pilot-scale slurry tank containing nickel oxide particle agglomerates suspended in iso-octane by the action of an axial impeller and slight bubbling nitrogen gas. The behaviour of a tracer particle representing solid aggregates is determined from radioactive particle tracking measurements with a spatial accuracy of ∼2 mm. An increase in the overall space occupied by the tracer is observed with increasing stirring speed. The instantaneous velocities, calculated by time differentiation of successive tracer positions, are significantly higher than the dynamic error. A measure based on the Reynolds stress as the turbulence level estimator is reliably mapped in three dimensions from the ensemble-averaged correlation matrix of the Lagrangian tracer velocity, enabling studying the influence of agitation on the turbulence levels distribution. This study offers an improved understanding of three-phase stirred reactors, which efficiencies are heavily coupled to complex fluid mechanics, especially in a turbulent flow. The axisymmetry is broken due to the presence of baffles. Incrementing the agitation intensity reduces the axial coherence of the thrust on the solid phase, raising turbulence levels, especially nearby the impeller tip.
Palabras clave: RADIOACTIVE PARTICLE TRACKING , THREE-PHASE AGITATED TANK , TURBULENCE
Ver el registro completo
 
Archivos asociados
Tamaño: 4.130Mb
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/11336/162822
DOI: https://doi.org/10.1088/1361-6501/ac73dd
Colecciones
Articulos(ITAPROQ)
Articulos de INSTITUTO DE TECNOLOGIA DE ALIMENTOS Y PROCESOS QUIMICOS
Articulos(OCA CIUDAD UNIVERSITARIA)
Articulos de OFICINA DE COORDINACION ADMINISTRATIVA CIUDAD UNIVERSITARIA
Citación
Salierno, Gabriel Leonardo; Maestri, Mauricio Leonardo; Fraguío, María Sol; Picabea, Julia Valentina; Cassanello, Miryan; et al.; Study on the aggregate motion for gas-liquid-solid agitated tank reactors design using radioactive particle tracking; IOP Publishing; Measurement Science & Technology (print); 33; 9; 5-2022; 1-14
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