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废水生物脱氮系统对环境现实浓度轮胎磨损颗粒的应激响应机制:可浸出添加剂的贡献。

Stress response mechanism of wastewater biological nitrogen removal systems to environmentally realistic concentrations of tire wear particles: Contribution of leachable additives.

机构信息

School of Civil Engineering and Architecture, Zhejiang University of Science and Technology, Hangzhou, Zhejiang, 310023, China.

Municipal Planning and Design Research Institute, Hangzhou City Planning and Design Academy, Hangzhou, Zhejiang, 310012, China.

出版信息

Bioresour Technol. 2023 Nov;387:129610. doi: 10.1016/j.biortech.2023.129610. Epub 2023 Aug 4.

Abstract

The study quantified the biological nitrogen removal performance, microbial metabolism, microbial community structure, and antioxidant system in a sequencing batch reactor under long-term exposure to 0.1 and 1 mg/L tire wear particles (TWPs), and determined the contribution of leachable additives to the biotoxicity of TWPs. The results showed that long-term exposure to 0.1 and 1 mg/L TWPs inhibited both the nitrification and denitrification processes, reducing ammonia nitrogen (NH-N) and total nitrogen (TN) removal efficiency. The TWP leachate (TWPL) primarily contributed to the denitrification inhibition by TWPs, potentially due to the high concentration of zinc ions in the leachable additive. Furthermore, both TWP and TWPL inhibit nitrogen conversion, with TWP inhibiting the generation and transfer of electrons, while TWPL only negatively affects the electron transfer process. This study presents novel insights into the impact of TWPs on biological nitrogen removal, underscoring its broader implications for the geochemical nitrogen cycle.

摘要

该研究定量评估了在长期暴露于 0.1 和 1mg/L 轮胎磨损颗粒(TWP)下,序批式反应器中的生物脱氮性能、微生物代谢、微生物群落结构和抗氧化系统,并确定了可浸出添加剂对 TWP 生物毒性的贡献。结果表明,长期暴露于 0.1 和 1mg/L TWP 会抑制硝化和反硝化过程,降低氨氮(NH-N)和总氮(TN)去除效率。TWP 浸提液(TWPL)主要通过 TWP 中的高浓度锌离子对反硝化抑制起作用。此外,TWP 和 TWPL 均抑制氮转化,TWP 抑制电子的产生和转移,而 TWPL 仅对电子传递过程产生负面影响。本研究为 TWP 对生物脱氮的影响提供了新的见解,强调了其对地球化学氮循环的更广泛影响。

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