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利用暗发酵细菌的生物固定化来增强从玉米秸秆水解物中连续生产氢气。

Bio-immobilization of dark fermentative bacteria for enhancing continuous hydrogen production from cornstalk hydrolysate.

机构信息

School of Environment, Harbin Institute of Technology, Harbin 150090, China; Advanced Water Management Centre, Faculty of Engineering, Architecture and Information Technology, The University of Queensland, Brisbane, QLD 4072, Australia.

School of Life Science and Technology, Harbin Institute of Technology, Harbin 150090, China.

出版信息

Bioresour Technol. 2017 Nov;243:548-555. doi: 10.1016/j.biortech.2017.06.161. Epub 2017 Jun 30.

Abstract

Mycelia pellets were employed as biological carrier in a continuous stirred tank reactor to reduce biomass washout and enhance hydrogen production from cornstalk hydrolysate. Hydraulic retention time (HRT) and influent substrate concentration played critical roles on hydrogen production of the bioreactor. The maximum hydrogen production rate of 14.2mmol HLh was obtained at optimized HRT of 6h and influent concentration of 20g/L, 2.6 times higher than the counterpart without mycelia pellets. With excellent immobilization ability, biomass accumulated in the reactor and reached 1.6g/L under the optimum conditions. Upon further energy conversion analysis, continuous hydrogen production with mycelia pellets gave the maximum energy conversion efficiency of 17.8%. These results indicate mycelia pellet is an ideal biological carrier to improve biomass retention capacity of the reactor and enhance hydrogen recovery efficiency from lignocellulosic biomass, and meanwhile provides a new direction for economic and efficient hydrogen production process.

摘要

菌丝球被用作生物载体在连续搅拌釜式反应器中,以减少生物质冲洗并提高从玉米秸秆水解物中生产氢气的效率。水力停留时间(HRT)和进料基质浓度对生物反应器的产氢性能起着关键作用。在优化的 HRT 为 6h 和进料浓度为 20g/L 的条件下,获得了 14.2mmol HLh 的最大产氢率,比没有菌丝球时提高了 2.6 倍。由于具有优异的固定化能力,在最佳条件下,反应器中积累的生物量达到 1.6g/L。进一步的能量转化分析表明,采用菌丝球进行连续产氢的最大能量转化效率为 17.8%。这些结果表明,菌丝球是一种理想的生物载体,可以提高反应器的生物质保留能力,并提高从木质纤维素生物质中回收氢气的效率,同时为经济高效的制氢工艺提供了新的方向。

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