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工程化稳定的部分硝化/内源性部分反硝化-厌氧氨氧化工艺用于强化低碳氮比废水的脱氮

Engineered stable partial nitrification/endogenous partial denitrification-anammox process for enhanced nitrogen removal from low carbon-to-nitrogen ratio wastewater.

作者信息

Gao Mingchang, Sun Shaofang, Shao Changtao, Qiu Qi, Kong Congcong, Qiu Liping

机构信息

School of Water Conservancy and Environment, University of Jinan, Jinan 250022, China; School of Civil Engineering and Architecture, University of Jinan, Jinan 250022, China.

School of Civil Engineering and Architecture, University of Jinan, Jinan 250022, China; Research Center for Functional Material & Water Purification Engineering of Shandong Province, Jinan 250022, China.

出版信息

Bioresour Technol. 2025 Jul;428:132466. doi: 10.1016/j.biortech.2025.132466. Epub 2025 Mar 30.

Abstract

Addressing the intractable challenges of nitrite instability and slow start-up in anammox for low carbon-to-nitrogen (C/N) ratio wastewater treatment, a one-stage partial nitrification/endogenous partial denitrification-anammox (PN/EPD-A) process in a sequencing batch biofilm reactor was proposed. By synergistically coupling PN and EPD, self-sustained nitrite supply for anammox was achieved. Concurrently, a layered biofilm structure, engineered through tailored aeration and carrier addition, facilitated the rapid enrichment of anammox bacteria. The results demonstrated exceptional performance, achieving a total nitrogen removal efficiency of 83.3 %, with anammox consistently contributing 75.8 % of the nitrogen removed. Microbial community analysis further indicated the stable coexistence of anammox bacteria, ammonia-oxidizing bacteria, and glycogen-accumulating organisms, with their relative abundance reaching 1.36 %, 2.19 % and 9.80 %, respectively. These findings unveiled a robust and efficient strategy to overcome the limitations of anammox technology in low C/N wastewater treatment, paving the way for its broader application in nitrogen removal.

摘要

针对厌氧氨氧化处理低碳氮比(C/N)废水时亚硝酸盐不稳定和启动缓慢的棘手挑战,提出了一种序批式生物膜反应器中的单级部分硝化/内源性部分反硝化-厌氧氨氧化(PN/EPD-A)工艺。通过协同耦合PN和EPD,实现了厌氧氨氧化的亚硝酸盐自维持供应。同时,通过定制曝气和添加载体构建的分层生物膜结构促进了厌氧氨氧化细菌的快速富集。结果显示出优异的性能,总氮去除效率达到83.3%,厌氧氨氧化始终贡献75.8%的氮去除量。微生物群落分析进一步表明厌氧氨氧化细菌、氨氧化细菌和糖原积累微生物稳定共存,它们的相对丰度分别达到1.36%、2.19%和9.80%。这些发现揭示了一种强大而有效的策略,以克服厌氧氨氧化技术在低C/N废水处理中的局限性,为其在氮去除方面的更广泛应用铺平了道路。

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