Artículo
Industrial SBR Process. Computer Simulation Study for On-line Estimation of Steady-State Variables Using Neural Networks
Minari, Roque Javier
; Stegmayer, Georgina
; Gugliotta, Luis Marcelino
; Chiotti, Omar Juan Alfredo
; Vega, Jorge Ruben
Fecha de publicación:
12/2007
Editorial:
Wiley VCH Verlag
Revista:
Macromolecular Reaction Engineering
ISSN:
1862-832X
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
This work investigates the industrial production of styrene-butadiene rubber in a continuous reactor train, and proposes a soft sensor for online monitoring of several processes and polymer quality variables in each reactor. The soft sensor includes two independent artificial neural networks (ANN). The firstANNestimatesmonomer conversion, solid content, polymer production, average particle diameter, and average copolymer composition; the second ANN estimates average molecular weights and average branching degrees. The required ANN inputs are: (i) the reagent feed rates into the first reactor and (ii) the reaction heat rate in each reactor. The proposed ANN-based soft sensor proved robust to several measurement errors, and is suitable for online estimation and closedloop control strategies.
Palabras clave:
Neural Network
,
Sbr Production
,
Process Monitoring
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Articulos(INGAR)
Articulos de INST.DE DESARROLLO Y DISEÑO (I)
Articulos de INST.DE DESARROLLO Y DISEÑO (I)
Articulos(INTEC)
Articulos de INST.DE DES.TECNOL.PARA LA IND.QUIMICA (I)
Articulos de INST.DE DES.TECNOL.PARA LA IND.QUIMICA (I)
Citación
Minari, Roque Javier; Stegmayer, Georgina; Gugliotta, Luis Marcelino; Chiotti, Omar Juan Alfredo; Vega, Jorge Ruben; Industrial SBR Process. Computer Simulation Study for On-line Estimation of Steady-State Variables Using Neural Networks; Wiley VCH Verlag; Macromolecular Reaction Engineering; 1; 3; 12-2007; 405-412
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