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Ammonia Oxidizers in a Pilot-Scale Multilayer Rapid Infiltration System for Domestic Wastewater Treatment

机译:中试多层快速渗透系统中的氨氧化处理生活污水

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摘要

A pilot-scale multilayer rapid infiltration system (MRIS) for domestic wastewater treatment was established and efficient removal of ammonia and chemical oxygen demand (COD) was achieved in this study. The microbial community composition and abundance of ammonia oxidizers were investigated. Efficient biofilms of ammonia oxidizers in the stationary phase (packing material) was formed successfully in the MRIS without special inoculation. DGGE and phylogenetic analyses revealed that proteobacteria dominated in the MRIS. Relative abundance of ammonia-oxidizing archaea (AOA) and ammonia-oxidizing bacteria (AOB) showed contrary tendency. In the flowing phase (water effluent), AOA diversity was significantly correlated with the concentration of dissolve oxygen (DO), NO3-N and NH3-N. AOB abundance was significantly correlated with the concentration of DO and chemical oxygen demand (COD). NH3-N and COD were identified as the key factors to shape AOB community structure, while no variable significantly correlated with that of AOA. AOA might play an important role in the MRIS. This study could reveal key environmental factors affecting the community composition and abundance of ammonia oxidizers in the MRIS.
机译:建立了用于家庭废水处理的中试规模多层快速渗透系统(MRIS),并在这项研究中实现了对氨和化学需氧量(COD)的有效去除。研究了氨气氧化剂的微生物群落组成和丰富度。无需特殊接种即可在MRIS中成功形成固定相中高效的氨氧化生物膜(填充材料)。 DGGE和系统发育分析表明,在MRIS中,蛋白细菌占主导地位。氨氧化古细菌(AOA)和氨氧化细菌(AOB)的相对丰度显示出相反的趋势。在流动相(废水)中,AOA的多样性与溶解氧(DO),NO3-N和NH3-N的浓度显着相关。 AOB丰度与DO浓度和化学需氧量(COD)显着相关。 NH3-N和COD被认为是影响AOB群落结构的关键因素,而变量与AOA没有显着相关。 AOA可能在MRIS中扮演重要角色。这项研究可以揭示影响MRIS中氨气氧化剂的群落组成和丰富度的关键环境因素。

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