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The role of the combined nitrogen-sulfur-carbon cycles for efficient performance of anammox-based systems

厌氧氨氧化菌 硫黄 氮气 环境科学 碳纤维 混合营养体 制浆造纸工业 环境化学 硫酸盐 序批式反应器 硫循环 化学 废物管理 反硝化 环境工程 异养 计算机科学 生物 细菌 工程类 污水处理 复合数 有机化学 反硝化细菌 遗传学 算法
作者
Dominika Derwis,Hussein E. Al‐Hazmi,Joanna Majtacz,Przemysław Kowal,Sławomir Ciesielski,Jacek Mąkinia
出处
期刊:Science of The Total Environment [Elsevier BV]
卷期号:917: 170477-170477 被引量:5
标识
DOI:10.1016/j.scitotenv.2024.170477
摘要

The combined anammox/mixotrophic denitrification process was conducted in two granular sequencing batch reactors (SBRs) during a 200-day operation. Both reactors were fed with synthetic medium, but SBR2 was enriched with additional sulfate (SO42−) which influenced sulfate reduction ammonium oxidation (SRAO) and heterotrophic reduction of SO42− by sulfate reducing bacteria. It was hypothesized that the addition of SO42− could positively impact the removal rates of N-S-C compounds. A low C/N ratio (0.4–1.6) was maintained to prevent inhibition of anaerobic ammonium oxidizing bacteria (AnAOB), and alternating chemical oxygen demand (COD) on/off conditions were used to regenerate AnAOB during COD-off phases and heterotrophic denitrifiers during COD-on phases. Stoichiometric analysis showed that introducing SO42− in SBR2 enhanced the ammonium utilization rate, which was approximately 10 % higher compared to SBR1 in the final stage of the experiment (25.8 vs. 22.8 mg N/(g VSS·h)). The total nitrogen removal efficiencies ranged from 62 % to 99 % in both reactors, with SBR2 consistently exhibiting approximately 4 % higher efficiency than SBR1. In SBR2, the maximum overall SO42− utilization efficiency reached 27 % under COD-off conditions, while overall COD utilization was almost complete under COD-on conditions. A strong correlation (R2 = 0.98) was observed between SO42− production and COD utilization. The key players responsible for N and S transformations in response to SO42− addition were Candidatus Brocadia and Chloroflexi - Anaerolineae. This study highlights the potential to enhance the overall efficiency of N-S-C removal by implementing an integrated anammox/mixotrophic denitrification process. The combination of cycles emerges as a sustainable approach for treating wastewater rich in N-S-C compounds.
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