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冷冻预处理辅助高铁酸钾促进废活性污泥厌氧发酵产氢。

Freezing pretreatment assists potassium ferrate to promote hydrogen production from anaerobic fermentation of waste activated sludge.

机构信息

State Key Laboratory of Pollution Control and Resource Reuse, International Joint Research Center for Sustainable Urban Water System, College of Environmental Science & Engineering, Tongji University, 1239 Siping Road, Shanghai 200092, China; UN Environment-Tongji Institute of Environment for Sustainable Development, Siping Road, Shanghai 200092, China.

State Key Laboratory of Pollution Control and Resource Reuse, International Joint Research Center for Sustainable Urban Water System, College of Environmental Science & Engineering, Tongji University, 1239 Siping Road, Shanghai 200092, China.

出版信息

Sci Total Environ. 2021 Aug 10;781:146685. doi: 10.1016/j.scitotenv.2021.146685. Epub 2021 Mar 23.

Abstract

Anaerobic fermentation is an eco-friendly technology for waste activated sludge (WAS) treatment, during which resource recycle can be achieved. However, traditional sludge anaerobic fermentation is limited by the poor efficiency. We herein reported a novel high-efficiency technology by combining freezing with potassium ferrate (PF) for sludge pretreatment to promote hydrogen production from anaerobic fermentation. Experimental results demonstrated that freezing coupled with PF pretreatment exerted positively synergetic effect on hydrogen production. The maximal hydrogen production of 12.50 mL/g VSS (volatile suspended solids) was detected in the fermenter pretreated by freezing (-12 °C for 24 h) coupled with PF at 0.15 g/g TSS (total suspended solids), which was 1.34, 2.33, and 7.91 times of that from the individual PF, individual freezing, and control fermenters, respectively. The simulation results based on the modified Gompertz model indicated that both the hydrogen production potential and rate were promoted by freezing coupled with 0.15 g/g TSS PF pretreatment, from 2.14 to 13.52 mL/g VSS and 0.012 to 0.163 mL/g VSS/h, respectively. Thorough mechanism investigations revealed that the sludge EPS (extracellular polymeric substances) and microbial cells were both effectively damaged by combined freezing and PF pretreatment, resulting in the acceleration of sludge disintegration. Further investigations demonstrated that except for the acidogenesis, the other biochemical processes were all inhibited by freezing coupled with PF pretreatment, but the inhibitory extent for hydrogen consuming processes was more serious than that responsible for its generation. Gene sequencing analysis illuminated that both of the hydrolytic and hydrogen generating bacteria were largely enriched in the combined pretreatment fermenter. Moreover, the dewatering performances of fermented sludge were found to be notably enhanced by freezing coupled with PF pretreatment.

摘要

厌氧发酵是一种环保的废活性污泥(WAS)处理技术,在此过程中可以实现资源回收。然而,传统的污泥厌氧发酵效率有限。本文报道了一种将冷冻与高铁酸钾(PF)结合用于污泥预处理以促进厌氧发酵产氢的新型高效技术。实验结果表明,冷冻与 PF 预处理协同作用对产氢有积极影响。在发酵罐中用冷冻(-12°C 24 h)与 0.15 g/g TSS(总悬浮固体)PF 预处理后,最大产氢量为 12.50 mL/g VSS(挥发性悬浮固体),分别是单独 PF、单独冷冻和对照发酵罐的 1.34、2.33 和 7.91 倍。基于修正的 Gompertz 模型的模拟结果表明,冷冻与 0.15 g/g TSS PF 预处理均促进了产氢潜力和速率的提高,分别从 2.14 增加到 13.52 mL/g VSS 和从 0.012 增加到 0.163 mL/g VSS/h。深入的机制研究表明,冷冻与 PF 联合预处理有效地破坏了污泥的 EPS(胞外聚合物)和微生物细胞,加速了污泥的解体。进一步的研究表明,除了产酸外,冷冻与 PF 预处理还抑制了其他生化过程,但对消耗氢的过程的抑制程度比产生氢的过程更严重。基因测序分析表明,水解和产氢细菌在联合预处理发酵罐中均得到了大量富集。此外,发现冷冻与 PF 预处理显著提高了发酵污泥的脱水性能。

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