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Energy Self-Sufficiency Conditions of Ethanol Autothermal Reforming: a Simulation Study
Brito, Marcos Lapa; Maraes, Caetano; Santos, Luiz Carlos Lobato dos; Simonelli, George.
Afiliação
  • Brito, Marcos Lapa; Federal University of Bahia. Oil, Gas and Biofuels Research Group. Postgraduate Program of Chemical Engineering. Salvador. BR
  • Maraes, Caetano; Federal University of Rio de Janeiro. Department of Chemical Engineering. Ilha do Fundão. BR
  • Santos, Luiz Carlos Lobato dos; Federal University of Bahia. Oil, Gas and Biofuels Research Group. Postgraduate Program of Chemical Engineering. Salvador. BR
  • Simonelli, George; Federal University of Bahia. Oil, Gas and Biofuels Research Group. Postgraduate Program of Chemical Engineering. Salvador. BR
Braz. arch. biol. technol ; 64(spe): e21200045, 2021. tab, graf
Artigo em Inglês | LILACS | ID: biblio-1278460
Biblioteca responsável: BR1.1
ABSTRACT
Abstract Natural gas steam reforming is commonly used for hydrogen production. However, research has shown that ethanol autothermal reforming can produce cleaner hydrogen gas efficiently. Despite this, there is a lack of studies on the energy self-sufficiency conditions of the ethanol autothermal reform. In this paper, we use simulations and the Response Surface Methodology (RSM) for the multivariate analysis of the energy self-sufficiency conditions in this process. First, we constructed and validated an industrial flowchart. After that, RSM allowed us to assess the process variables effects. The process variables studied were temperature (0 to 1000 ºC), pressure (20 to 30 bar), steam/ethanol ratio (2 to 5 mol/mol) and O2/ethanol ratio (0 to 1.5 mol/mol). We observe that the temperature and steam/ethanol ratio increase have a positive effect on hydrogen production. On the contrary, the O2/ethanol ratio increase has a negative effect, and the pressure increase is not statistically significant on hydrogen production. Therefore, the pressure was used at its minimum level (20 bar) while the temperature and the steam/ethanol ratio at its maximum levels (1000 ºC and 5 mol/mol). We also evaluated the energy consumption for the Autothermal Reactor (ATR). The reactor consumed 477.92 kJ/mol ethanol to produce 5.12 mol H2/mol ethanol when we use 1000 ºC, 20 bar, steam/ethanol 5 mol/mol, and O2/ethanol 0 mol/mol. ATR's energy self-sufficiency is achieved by using 1000 ºC, 20 bar, steam/ethanol 5 mol/mol, and O2/ethanol 0.86 mol/mol. In these conditions, 3.95 mol H2/mol ethanol is produced with 0 kJ/mol ethanol.
Assuntos


Texto completo: Disponível Coleções: Bases de dados internacionais Base de dados: LILACS Assunto principal: Etanol / Gás Natural / Energia Renovável / Hidrogênio Tipo de estudo: Estudo prognóstico Idioma: Inglês Revista: Braz. arch. biol. technol Assunto da revista: Biologia Ano de publicação: 2021 Tipo de documento: Artigo País de afiliação: Brasil Instituição/País de afiliação: Federal University of Bahia/BR / Federal University of Rio de Janeiro/BR

Texto completo: Disponível Coleções: Bases de dados internacionais Base de dados: LILACS Assunto principal: Etanol / Gás Natural / Energia Renovável / Hidrogênio Tipo de estudo: Estudo prognóstico Idioma: Inglês Revista: Braz. arch. biol. technol Assunto da revista: Biologia Ano de publicação: 2021 Tipo de documento: Artigo País de afiliação: Brasil Instituição/País de afiliação: Federal University of Bahia/BR / Federal University of Rio de Janeiro/BR
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