首页> 外文期刊>Journal of Environmental Science and Health. A, Toxic/Hazardous Substances & Environmental Engineering >Molecular Analysis of Microbial Communities in Nitrification and Denitrification Reactors Treating High Ammonia Leachate
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Molecular Analysis of Microbial Communities in Nitrification and Denitrification Reactors Treating High Ammonia Leachate

机译:硝化反硝化反应器处理高氨水渗滤液中微生物群落的分子分析

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Molecular analysis of microbial populations in two bench-scale nitrification and denitrification reactors fed with high ammonia landfill leachate was conducted in this study by using DGGE, cloning, and FISH techniques in addition to classical efficiency control parameters. Nitrification tank was operated with a computer-controlled alkalinity dosing system to supply the alkalinity intermittently as consumed on the basis of on-line pH monitoring. By keeping the pH at 7.0 with this system, 99% nitrification efficiency and rates of about 0.14-0.18 mgNH_4~+-N/mgVSS day were obtained. Meanwhile, as ammonia oxidizing bacteria Nitrosomonas and Nitrosococcus mobilis-like cells and as nitrite oxidizing bacteria Nitrobacter-related cells were intensively indicated. Moreover, some aerobic denitrifiers as Thauera species were also identified. After the termination of pH adjustment in the preceding anaerobic reactors, nitrification tank was loaded with more biodegradable COD as a result of reduced COD removal in anaerobic reactors. Microbial diversity was immediately affected from this alteration and heterotrophic carbonaceous bacteria and aerobic denitrifiers have dominated. To provide the former high efficiencies, retention time has increased from 24 to 48 h and a second pump dosing HCl was included to the automatic control system. Subsequent to these precautions, numbers of ammonia (Nso 190) and nitrite oxidizing bacteria (NIT3) were comparatively increased. In denitrification system, about 98% denitrification efficiencies were obtained at 2000 mg/L NO_x-N concentrations if sodium acetate was supplied as carbon source. Meanwhile, with 20 gVSS/l biomass concentration, denitrification rates of about 1.34 mgNO_x-N/mgVSS day were obtained. All sludge samples have represented similar DGGE patterns and Paraccoccus-related species were identified as dominant denitrifying bacteria.
机译:在这项研究中,除了经典的效率控制参数外,还使用DGGE,克隆和FISH技术对两个装有高氨垃圾渗滤液的台式规模硝化和反硝化反应器中的微生物种群进行了分子分析。硝化池通过计算机控制的碱度计量系统运行,可在在线pH监测的基础上间歇性地消耗所消耗的碱度。通过使用该系统将pH保持在7.0,可获得99%的硝化效率和约0.14-0.18 mgNH_4〜+ -N / mgVSS天的速率。同时,作为氨氧化细菌,亚硝化单胞菌和运动硝化球菌样细胞,以及作为亚硝酸盐氧化细菌的,强烈涉及与硝化细菌有关的细胞。此外,还鉴定出一些好氧反硝化剂作为Thauera菌种。在先前的厌氧反应器中终止pH调节后,由于减少了厌氧反应器中COD的去除,硝化池中装载了更多可生物降解的COD。这种改变立即影响了微生物的多样性,并且异养碳质细菌和好氧反硝化剂占主导地位。为了提供以前的高效率,保留时间从24小时增加到48小时,并且在第二个泵中加入了HCl的自动控制系统。在采取这些预防措施之后,氨(Nso 190)和亚硝酸盐氧化细菌(NIT3)的数量相对增加。在反硝化系统中,如果提供乙酸钠作为碳源,则在2000 mg / L NO_x-N浓度下可获得约98%的反硝化效率。同时,当生物质浓度为20 gVSS / l时,反硝化率约为1.34 mgNO_x-N / mgVSS天。所有污泥样品均具有相似的DGGE模式,与副球菌相关的物种被确定为主要的反硝化细菌。

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