4.7 Article

Controlling sugarcane press-mud fermentation to increase bioethanol steam reforming for hydrogen production

期刊

WASTE MANAGEMENT
卷 98, 期 -, 页码 1-13

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.wasman.2019.08.006

关键词

Bioethanol impurities; Biomass; Hydrogen; Renewable energy; RhPt/CeO2-SiO2; S. cerevisiae

资金

  1. Colciencias (Francisco Jose de Caldas Fund)
  2. Universidad de La Sabana [ING-163, 174-2016]
  3. Colciencias [727-2015]

向作者/读者索取更多资源

Hydrogen (H-2) production from sugarcane press-mud, a waste obtained from the non-centrifugal sugarcane agroindustry, was assessed by coupling hydrolysis, fermentation, purification, and ethanol steam reforming (ESR). Two culture media were employed on three different sugarcane press-mud samples to produce bioethanol by fermentation using Saccharomyces cerevisiae at 30 degrees C. One culture medium was supplemented with nutrients and the other without supplementation. The supplementation did not have a significant effect over ethanol production (similar to 82.1 g L-1) after 70 h fermentation, but the concentration of the impurities was always lower under supplemented conditions. Among tested impurities, differences in 3-methyl-1-butanol showed the effect of the supplementation on the ESR over RhPt/CeO2-SiO2 catalyst at 700 degrees C, where the H-2 yield decreased significantly in the presence of 3-methyl-1-butanol (p < 0.05). The spearman correlation coefficient showed that the H-2 yield was correlated with the 3-methy-1-butanol content (RHO = -0.929) and carbon deposits (RHO = -0.964). Therefore, supplemented bioethanol could deliver 3.0 g H-2 kg(-1) sugarcane press-mud, which is almost twice that of the non supplemented samples, likely due to the reduction of harmful impurities in the bioethanol. Additionally, supplemented conditions allowed for energy savings in the process and improved catalyst stability. This study provides insights into the effect of supplementing culture media to produce purer bioethanol samples, which further deliver higher H-2 yields by ESR. (C) 2019 Elsevier Ltd. All rights reserved.

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