Optimization of fermenters for ethanol production: Residence Time Analysis apllying Computational Fluid Dynamics

The search for new ways to provide fuel for the society is one of the great challenge for scientists and academic researchers. An interesting alternative is the ethanol produced from sugar cane. Brazil has an advantaged position in ethanol production, but the equipment used in the sugar cane plants,...

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Main Authors: Evelise Roman Corbalan Góis Freire, Paulo Seleghim Junior
Format: Article
Language:English
Published: Universidade Estadual de Londrina 2020-06-01
Series:Semina: Ciências Exatas e Tecnológicas
Subjects:
Online Access:http://www.uel.br/revistas/uel/index.php/semexatas/article/view/38903
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spelling doaj-998c0c00d7f64439b82895fcf716cd762021-07-01T15:46:45ZengUniversidade Estadual de LondrinaSemina: Ciências Exatas e Tecnológicas1676-54511679-03752020-06-01411515810.5433/1679-0375.2020v41n1p5120119Optimization of fermenters for ethanol production: Residence Time Analysis apllying Computational Fluid DynamicsEvelise Roman Corbalan Góis Freire0Paulo Seleghim Junior1Universidade Federal de LavrasUniversidade de São PauloThe search for new ways to provide fuel for the society is one of the great challenge for scientists and academic researchers. An interesting alternative is the ethanol produced from sugar cane. Brazil has an advantaged position in ethanol production, but the equipment used in the sugar cane plants, the fermenters, for example, still need efficiency improvements. The fermenter geometry has a great influence on the flow parameters and, consequently, in the chemical reactions involved the fermentation process. It is necessary to ensure that the sugar cane juice remains enough in the fermenter enough time to complete the chemical reaction, but not more than the ideal time required, which can reduce the process efficiency.  In this study, the influence of the geometry in the Residence Time Distribution (RTD) was analyzed by a computational tracer injection technique. Besides, 20 geometries were proposed by a univariate optimization. Results show the inlet angle has the major influence in the flow and the optimum geometry for the continuous fermenter must have 22.5° for inlet angle and 120 cm for outlet tube height. Considering the fermenters large scales in sugarcane juice processing, the improvement proposed in the fermenter geometry can increase the profits and reduce environmental impacts.http://www.uel.br/revistas/uel/index.php/semexatas/article/view/38903residence time distributions. computational fluid dynamics. fermenters. ethanol production.
collection DOAJ
language English
format Article
sources DOAJ
author Evelise Roman Corbalan Góis Freire
Paulo Seleghim Junior
spellingShingle Evelise Roman Corbalan Góis Freire
Paulo Seleghim Junior
Optimization of fermenters for ethanol production: Residence Time Analysis apllying Computational Fluid Dynamics
Semina: Ciências Exatas e Tecnológicas
residence time distributions. computational fluid dynamics. fermenters. ethanol production.
author_facet Evelise Roman Corbalan Góis Freire
Paulo Seleghim Junior
author_sort Evelise Roman Corbalan Góis Freire
title Optimization of fermenters for ethanol production: Residence Time Analysis apllying Computational Fluid Dynamics
title_short Optimization of fermenters for ethanol production: Residence Time Analysis apllying Computational Fluid Dynamics
title_full Optimization of fermenters for ethanol production: Residence Time Analysis apllying Computational Fluid Dynamics
title_fullStr Optimization of fermenters for ethanol production: Residence Time Analysis apllying Computational Fluid Dynamics
title_full_unstemmed Optimization of fermenters for ethanol production: Residence Time Analysis apllying Computational Fluid Dynamics
title_sort optimization of fermenters for ethanol production: residence time analysis apllying computational fluid dynamics
publisher Universidade Estadual de Londrina
series Semina: Ciências Exatas e Tecnológicas
issn 1676-5451
1679-0375
publishDate 2020-06-01
description The search for new ways to provide fuel for the society is one of the great challenge for scientists and academic researchers. An interesting alternative is the ethanol produced from sugar cane. Brazil has an advantaged position in ethanol production, but the equipment used in the sugar cane plants, the fermenters, for example, still need efficiency improvements. The fermenter geometry has a great influence on the flow parameters and, consequently, in the chemical reactions involved the fermentation process. It is necessary to ensure that the sugar cane juice remains enough in the fermenter enough time to complete the chemical reaction, but not more than the ideal time required, which can reduce the process efficiency.  In this study, the influence of the geometry in the Residence Time Distribution (RTD) was analyzed by a computational tracer injection technique. Besides, 20 geometries were proposed by a univariate optimization. Results show the inlet angle has the major influence in the flow and the optimum geometry for the continuous fermenter must have 22.5° for inlet angle and 120 cm for outlet tube height. Considering the fermenters large scales in sugarcane juice processing, the improvement proposed in the fermenter geometry can increase the profits and reduce environmental impacts.
topic residence time distributions. computational fluid dynamics. fermenters. ethanol production.
url http://www.uel.br/revistas/uel/index.php/semexatas/article/view/38903
work_keys_str_mv AT eveliseromancorbalangoisfreire optimizationoffermentersforethanolproductionresidencetimeanalysisapllyingcomputationalfluiddynamics
AT pauloseleghimjunior optimizationoffermentersforethanolproductionresidencetimeanalysisapllyingcomputationalfluiddynamics
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