<b>Modeling and simulation of an isothermal reactor for methanol steam reforming<b>

Autores

  • Raphael Menechini Neto Universidade Estadual de Maringá
  • Onélia Aparecida Andreo dos Santos Universidade Estadual de Maringá
  • Luiz Mario de Matos Jorge Universidade Estadual de Maringá

DOI:

https://doi.org/10.4025/actascitechnol.v36i2.18850

Palavras-chave:

mathematical modelling, methanol, steam reforming, hydrogen

Resumo

Due to growing electricity demand, cheap renewable energy sources are needed. Fuel cells are an interesting alternative for generating electricity since they use hydrogen as their main fuel and release only water and heat to the environment. Although fuel cells show great flexibility in size and operating temperature (some models even operate at low temperatures), the technology has the drawback for hydrogen transportation and storage. However, hydrogen may be produced from methanol steam reforming obtained from renewable sources such as biomass. The use of methanol as raw material in hydrogen production process by steam reforming is highly interesting owing to the fact that alcohol has the best hydrogen carbon-1 ratio (4:1) and may be processed at low temperatures and atmospheric pressures. They are features which are desirable for its use in autonomous fuel cells. Current research develops a mathematical model of an isothermal methanol steam reforming reactor and validates it against experimental data from the literature. The mathematical model was solved numerically by MATLAB® and the comparison of its predictions for different experimental conditions indicated that the developed model and the methodology for its numerical solution were adequate. Further, a preliminary analysis was undertaken on methanol steam reforming reactor project for autonomous fuel cell.

 

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Publicado

2014-04-04

Como Citar

Menechini Neto, R., Santos, O. A. A. dos, & Jorge, L. M. de M. (2014). <b>Modeling and simulation of an isothermal reactor for methanol steam reforming<b>. Acta Scientiarum. Technology, 36(2), 295–301. https://doi.org/10.4025/actascitechnol.v36i2.18850

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Seção

Engenharia Quí­mica

 

0.8
2019CiteScore
 
 
36th percentile
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0.8
2019CiteScore
 
 
36th percentile
Powered by  Scopus

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