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新型错流蜂窝仿生载体促进 IFAS 系统中同步硝化反硝化除磷:性能、机制与关键种。

A novel cross-flow honeycomb bionic carrier promotes simultaneous nitrification, denitrification and phosphorus removal in IFAS system: Performance, mechanism and keystone species.

机构信息

State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin 150090, PR. China.

State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin 150090, PR. China.

出版信息

Water Res. 2022 Oct 15;225:119132. doi: 10.1016/j.watres.2022.119132. Epub 2022 Sep 18.

Abstract

Simultaneously achieving efficient nitrogen (N) and phosphorus (P) removal without adding external carbon source is vital for carbon-neutral wastewater treatment. In this study, a novel cross-flow honeycomb bionic microbial carrier (CF) was developed to improve the efficiency of simultaneous nitrification, denitrification, and P removal (SNDPR) in an integrated fixed-film activated sludge (IFAS) system. A parallel laboratory-scale sequencing batch reactor with the commercialized microbial carriers (CM) (CM-IFAS) was performed as the comparative system for over 233 d The results demonstrated that CF-IFAS exhibited a more consistent N removal efficiency and better performance than CM-IFAS. In the CF-IFAS, the highest N and P removal efficiencies were 95.40% and 100%, respectively. Typical cycle analysis revealed that nitrate was primarily removed by the denitrifying glycogen-accumulating organisms in the CF-IFAS and by denitrifying phosphate-accumulating organisms in the CM-IFAS. The neutral community model showed that the microbial community assembly in both the reactors was driven by deterministic selection rather than stochastic factors. Compared to those in CM-IFAS, the microorganisms in CF-IFAS were more closely related to each other and had more keystone species: norank_f_norank_o_norank_c_OM190, SM1A02, Defluviicoccus, norank_f_ Saprospiraceae, and norank_f_Rhodocyclaceae. The absolute contents of the genes associated with N removal (bacterial amoA, archaeal amoA, NarG, NapA, NirS, and NirK) were higher in CF-IFAS than in CM-IFAS; the N cycle activity was also stronger in the CF-IFAS. Overall, the microecological environment differed between both systems. This study provides novel insights into the potential of bionic carriers to improve SNDPR performance by shaping microbial communities, thereby providing scientific guidance for practical engineering.

摘要

同时实现高效的氮(N)和磷(P)去除而不添加外部碳源对碳中和废水处理至关重要。在这项研究中,开发了一种新型的错流蜂窝仿生微生物载体(CF),以提高集成固定膜活性污泥(IFAS)系统中同步硝化、反硝化和 P 去除(SNDPR)的效率。采用商业化微生物载体(CM)(CM-IFAS)的平行实验室规模序批式反应器作为对比系统进行了超过 233 天的实验。结果表明,CF-IFAS 表现出更一致的 N 去除效率和更好的性能。在 CF-IFAS 中,最高的 N 和 P 去除效率分别达到 95.40%和 100%。典型的周期分析表明,硝酸盐主要通过 CF-IFAS 中的反硝化糖原积累菌和 CM-IFAS 中的反硝化磷积累菌去除。中性群落模型表明,两个反应器中的微生物群落组装是由确定性选择而不是随机因素驱动的。与 CM-IFAS 相比,CF-IFAS 中的微生物彼此之间的关系更为密切,并且具有更多的关键物种:norank_f_norank_o_norank_c_OM190、SM1A02、Defluviicoccus、norank_f_Saprospiraceae 和 norank_f_Rhodocyclaceae。与 CM-IFAS 相比,CF-IFAS 中与 N 去除相关的基因(细菌 amoA、古菌 amoA、NarG、NapA、NirS 和 NirK)的绝对含量更高;CF-IFAS 中的 N 循环活性也更强。总的来说,两个系统的微生态环境存在差异。本研究为仿生载体通过塑造微生物群落来提高 SNDPR 性能提供了新的见解,为实际工程提供了科学指导。

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