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磁场生物炭增强型微生物电解池与厌氧消化联合处理垃圾渗滤液中复杂有机物。

Magnetic biochar enhanced microbial electrolysis cell with anaerobic digestion for complex organic matter degradation in landfill leachate.

机构信息

School of Environmental Science and Engineering, Suzhou University of Science and Technology, Suzhou 215009, PR China.

College of Geography and Environmental Science, Zhejiang Normal University, Jinhua 321004, PR China.

出版信息

Sci Total Environ. 2024 Nov 1;949:175013. doi: 10.1016/j.scitotenv.2024.175013. Epub 2024 Jul 26.

Abstract

Combining microbial electrolytic cells with anaerobic digestion (MEC-AD) was considered as an important method for enhancing complex organic matter degradation. However, the magnetic biochar (MBC) addition would be an effective approach for enhancing biodegradation in MEC-AD. By designing orthogonal experiments, the optimal parameters of MBC-enhanced MEC-AD system for landfill leachate treatment were determined. The results indicated that the optimal conditions were identified as HRT of 72 h, electrode spacing of 2.5 cm, and applied voltage of 0.8 V. Under these conditions, the COD removal efficiency reached a maximum of 54.7 %. Additionally, the UV-vis, 3D-EEM, and GC-MS indicated the macromolecules 13-Docosenamide (Z), Bis(2-ethylhexyl) benzene-1,4-dicarboxylate and bis(2-ethylhexyl) phthalate were degraded. 13-Docosenamide (Z) was almost completely removed under the conditions of 0.8 V applied voltage, 2.5 cm electrode spacing and 24 h HRT, with a removal efficiency of 99.91 %. Significant differences were observed in the microbial core genera among the MEC-AD systems. The core genera in the anodic and cathodic biofilms were primarily fermentative and electroactive bacteria, including Soehngenia (2.2 % - 32.1 %, 3.2 % - 26.4 %) and Desulfomicrobium (1.1 % - 10.2 %, 2.0 % - 29.3 %). Fermentative bacteria, norank_f__Bacteroidetes_vadinHA17, established cooperative relationships with electroactive bacteria Acinetobacter. The enrichment of electrochemically active bacteria optimized microbial interactions, thereby synergistically enhancing the biotransformation of complex organic matter in landfill leachate.

摘要

将微生物电解池与厌氧消化(MEC-AD)相结合被认为是增强复杂有机物降解的重要方法。然而,添加磁性生物炭(MBC)是增强 MEC-AD 中生物降解的有效方法。通过设计正交实验,确定了用于处理垃圾渗滤液的 MBC 增强 MEC-AD 系统的最佳参数。结果表明,最佳条件为水力停留时间(HRT)为 72 h、电极间距为 2.5 cm、外加电压为 0.8 V。在这些条件下,COD 去除效率最高达到 54.7%。此外,UV-vis、3D-EEM 和 GC-MS 表明,大分子 13-二十二酰胺(Z)、双(2-乙基己基)邻苯二甲酸酯和双(2-乙基己基)邻苯二甲酸酯被降解。在 0.8 V 外加电压、2.5 cm 电极间距和 24 h HRT 的条件下,13-二十二酰胺(Z)几乎完全去除,去除效率为 99.91%。在 MEC-AD 系统中,微生物核心属之间存在显著差异。阳极和阴极生物膜中的核心属主要是发酵菌和电活性菌,包括 Soehngenia(2.2%-32.1%,3.2%-26.4%)和 Desulfomicrobium(1.1%-10.2%,2.0%-29.3%)。发酵菌 norank_f__Bacteroidetes_vadinHA17 与电活性菌不动杆菌建立了合作关系。电活性细菌的富集优化了微生物间的相互作用,从而协同增强了垃圾渗滤液中复杂有机物的生物转化。

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