微生物燃料电池处理高盐高氮工业废水的性能及吸附机理

IF 2.2 4区 环境科学与生态学 Q3 ENVIRONMENTAL SCIENCES
Environmental Technology Pub Date : 2025-07-01 Epub Date: 2025-02-18 DOI:10.1080/09593330.2025.2464980
Ning Liu, Xinmin Liu, Qingjie Guo
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引用次数: 0

摘要

无机盐和氮化合物普遍存在于化工、制药和石化工业的废水中。采用碳刷生物膜阳极和大孔吸附树脂作为多功能生物膜载体,在厌氧流化床微生物燃料电池(AFB-MFC)中处理高盐环境中的含氮废水。实验期间,进水DO值维持在0.2 ~ 0.5 mg/L之间,进水氮浓度分别为0.3、0.5、1.0 g/L。采用Materials Studio (MS)软件构建含氮化合物和MAR模型。模拟结果表明,MAR对亚硝酸盐氮的吸附性能最好,吸附热为117.7985 kJ/mol。MAR通过范德华力和氢键相互作用有效地去除含氮化合物。模拟结果与实验结果吻合较好,R²(>0.99)较高,表明回归显著性较强。对氨氮、亚硝酸盐氮和硝态氮的最高去除率分别为97.97±0.97%、98.81±1%和99±0.47%。结果表明,在盐度为10、20和30 g/L时,脱盐效率分别为55%、41.5%和27%。在AFB-MFC中,碳刷作为生物膜阳极的最大输出电压和功率密度分别为651.34 mV和174.97 mW/m²。高通量测序分析结果显示,碳刷上存在显著相对丰度的优势电活性细菌,如Proteobacteria、Firmicutes、Bacteroidota和Chloroflexi,以及柠檬酸杆菌(Citrobacter)、杆状杆菌(Corynebacterium)、假单胞菌(Pseudomonas)和Castellaniella等。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance and adsorption mechanism of microbial fuel cells in treating industrial wastewater with high salt and nitrogen content.

Inorganic salts and nitrogen compounds are prevalent in wastewater from chemical, pharmaceutical, and petrochemical industries. Nitrogen-containing wastewater in high-salt environments was treated in an anaerobic fluidised bed microbial fuel cell (AFB-MFC) with carbon brush biofilm anodes and macroporous adsorption resin (MAR) as a multifunctional biofilm carrier. During the experiment, the DO value of the influent was maintained between 0.2-0.5 mg/L, and the nitrogen concentrations in the influent were 0.3, 0.5, and 1.0 g/L, respectively. Materials Studio (MS) software was used to construct nitrogen-containing compounds and MAR models. The simulation result indicated that MAR exhibited the best adsorption performance on nitrite nitrogen, with an adsorption heat of 117.7985 kJ/mol. MAR effectively removes nitrogen-containing compounds through van der Waals forces and hydrogen bonding interactions. The simulation closely matched experimental results, with a high R² (>0.99) indicating strong regression significance. The highest removal efficiency of ammonia nitrogen, nitrite nitrogen, and nitrate nitrogen was 97.97 ± 0.97%, 98.81 ± 1%, and 99 ± 0.47%, respectively. The results showed that the desalination efficiency was 55%, 41.5%, and 27% at salinities of 10, 20, and 30 g/L, respectively. The maximum output voltage and power density achieved using carbon brush as biofilm anodes in the AFB-MFC were 651.34 mV and 174.97 mW/m², respectively. The high-throughput sequencing analysis results revealed a significant relative abundance of the dominant electroactive bacteria present on the carbon brush, such as Proteobacteria, Firmicutes, Bacteroidota, and Chloroflexi, and also identified such superior denitrification bacteria as Citrobacter, Corynebacterium, Pseudomonas, and Castellaniella etc.

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来源期刊
Environmental Technology
Environmental Technology 环境科学-环境科学
CiteScore
6.50
自引率
3.60%
发文量
0
审稿时长
4 months
期刊介绍: Environmental Technology is a leading journal for the rapid publication of science and technology papers on a wide range of topics in applied environmental studies, from environmental engineering to environmental biotechnology, the circular economy, municipal and industrial wastewater management, drinking-water treatment, air- and water-pollution control, solid-waste management, industrial hygiene and associated technologies. Environmental Technology is intended to provide rapid publication of new developments in environmental technology. The journal has an international readership with a broad scientific base. Contributions will be accepted from scientists and engineers in industry, government and universities. Accepted manuscripts are generally published within four months. Please note that Environmental Technology does not publish any review papers unless for a specified special issue which is decided by the Editor. Please do submit your review papers to our sister journal Environmental Technology Reviews at http://www.tandfonline.com/toc/tetr20/current
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