污水处理过程中进水特征和运行参数对氧化亚氮排放的影响:缓解策略和微生物见解

IF 3.6 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Current Research in Biotechnology Pub Date : 2024-01-01 DOI:10.1016/j.crbiot.2024.100207
Yi-Wei Zhao , Li-Li Du , Bing Hu , Hong-Yong Lin , Bin Liang , Yun-Peng Song , Yu-Qi Wang , Hong-Wu Wang , Peng-Fei Li , Ai-Jie Wang , Hong-Cheng Wang
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引用次数: 0

摘要

污水处理行业排放的一氧化二氮(N2O)是全球温室气体的重要来源。这项研究深入探讨了一氧化二氮的产生和吸收机制,将微生物过程与进水特征和运行参数等变量联系起来。进水中碳基质的性质对微生物群和一氧化二氮的产生有着深远的影响。提高碳氮比(C/N)可缓解反硝化酶之间的竞争态势,从而减少一氧化二氮的排放。保持中性至弱碱性的 pH 值和稳定的环境温度可使 N2O 还原酶的活性达到最佳状态。必须避免极端曝气速率和延长曝气时间,以减少 N2O 的释放。该研究强调了有效碳进料策略的重要性,并主张在活性污泥悬浮系统中延长水力停留时间(HRT)和污泥停留时间(SRT),以抑制 N2O 逸出。值得注意的是,过度的内部循环,再加上好氧区溶解氧(DO)水平的升高,加剧了一氧化二氮的排放风险。此外,重金属和抗生素等有害污染物的存在也会干扰氮消除过程,因此需要对由此产生的一氧化二氮排放危害进行全面评估。这项研究为减少 N2O 排放提供了科学依据和实用的管理方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Impact of influent characteristics and operational parameters on nitrous oxide emissions in wastewater treatment: Strategies for mitigation and microbial insights

Nitrous oxide (N2O) emissions from the wastewater treatment sector are a significant contributor to global greenhouse gas levels. This investigation delves into the mechanisms of N2O generation and uptake, correlating microbial processes with variables such as influent characteristics and operational parameters. The nature of carbon substrates in the influent profoundly influences microbial consortia and N2O output. Elevating the carbon-to-nitrogen (C/N) ratio has been shown to curtail N2O emissions by alleviating the competitive dynamics among denitrifying enzymes. Optimal activity of N2O reductase is achieved by maintaining a neutral to mildly alkaline pH and stable ambient temperatures. It is imperative to circumvent extreme aeration rates and prolonged aeration periods to reduce N2O release. The study underscores the importance of an effective carbon feed strategy and advocates for prolonged hydraulic retention times (HRT) and sludge retention times (SRT) in activated sludge suspension systems to inhibit N2O escape. Notably, excessive internal recycling, coupled with heightened dissolved oxygen (DO) levels in aerobic zones, intensifies N2O emission risks. Moreover, the presence of hazardous contaminants, such as heavy metals and antibiotics, interferes with nitrogen elimination processes, warranting a comprehensive assessment of consequent N2O emission hazards. This research provides a scientific basis as well as practical management approaches to diminish N2O emissions.

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来源期刊
Current Research in Biotechnology
Current Research in Biotechnology Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
6.70
自引率
3.60%
发文量
50
审稿时长
38 days
期刊介绍: Current Research in Biotechnology (CRBIOT) is a new primary research, gold open access journal from Elsevier. CRBIOT publishes original papers, reviews, and short communications (including viewpoints and perspectives) resulting from research in biotechnology and biotech-associated disciplines. Current Research in Biotechnology is a peer-reviewed gold open access (OA) journal and upon acceptance all articles are permanently and freely available. It is a companion to the highly regarded review journal Current Opinion in Biotechnology (2018 CiteScore 8.450) and is part of the Current Opinion and Research (CO+RE) suite of journals. All CO+RE journals leverage the Current Opinion legacy-of editorial excellence, high-impact, and global reach-to ensure they are a widely read resource that is integral to scientists' workflow.
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