4.7 Article

Dark fermentative biohydrogen production from confectionery wastewater in continuous-flow reactors

期刊

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
卷 47, 期 53, 页码 22348-22358

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2022.05.131

关键词

Dark fermentation; Biohydrogen; Biohythane; Confectionery wastewater; Anaerobic biofilter; Continuous-flow

资金

  1. Russian Science Foundation [21-79-10153]
  2. Russian Foundation for Basic Research [18-29-25042]
  3. Ministry of Science and Higher Education of the Russian Federation

向作者/读者索取更多资源

The feasibility of continuous biohydrogen production from industrial wastewater through the dark fermentation process was evaluated in this study. The results showed that producing biohydrogen from confectionery wastewater is promising. The fluidized bed reactor achieved higher hydrogen yield and production rate under certain operating parameters.
The production of biohydrogen from industrial wastewater through the dark fermentation (DF) process has attracted increased interest in recent years. To implement a DF process on a large scale, a thorough knowledge of laboratory scale process control is required. The operating parameters and design features of the reactors have a great influence on the efficiency of the process. In this work, the possibility of continuous production of biohydrogen from confectionery wastewater was evaluated. The DF process was carried out at 37 +/- 1 degrees C in two different reactors: an upflow anaerobic filter (AF) and a fluidized bed reactor (AFB). Polyurethane foam (PU) was used to immobilize the biomass. The DF process was studied at four hydraulic retention times (HRT) (1.5, 2.5, 7.5 and 15 days) and the corresponding organic loading rates (OLR) (9.21, 6.12, 2.04 and 1.02 g CODinit/(L day)). The highest hydrogen yield (HY) (44.73 ml/g CODinit) and hydrogen production rate (HPR) (92.5 ml/(L day)) was observed in AFB at HRT of 7.5 days and 2.5 days, respectively. The highest concentration of hydrogen in biogas was 34% in AF and 36% in AFB at HRT of 7.5 days. In contrast to AF, the COD removal efficiency in AFB increased with increasing HRT. The pH of the effluent was low (3.95-4.38). However, due to the use of PU for biomass immobilization, it is possible that there were local zones in the reactor that were optimal for the functioning of not only acidogens, but also methanogens. This was evidenced by a rather high content of methane in biogas (2.5% in AF and 9.6% in AFB at HRT of 15 days). These results provide valuable data for optimizing the continuous DF of wastewater from confectionery and other food industries to produce biohydrogen or biohythane. (C) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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