基于高通量测序的电镀废水铁碳微电解(ICME)预处理过程中厌氧-缺氧-缺氧(A2O)过程微生物群落和功能基因鉴定

Jingsi Gao , Huixiang Wang , Yuli Yang , Jianfeng Lv , Jiaheng Wen , Jia Zhu , Jianfeng Zhou
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引用次数: 1

摘要

工业废水含有高浓度的难降解有机碳,导致难以进行以下生物处理的低生物降解性。铁碳微电解(ICME)是为了分解较大的有机分子并提高生物降解性而开发的。先前的ICME预处理偶联研究主要集中在制药、染料和医疗废水上。本研究将ICME应用于表面活性剂处理电镀废水,然后采用厌氧-缺氧-好氧(A2O)生物工艺。当ICME处理的废水的比例较低(10%)时,对养分去除效率(化学氧化需求、氨、总氮和总磷酸盐)的影响几乎可以忽略不计。随着ICME处理废水的浓度提高到50%,去除效率逐渐降低,但出水水质仍达到排放标准。同时,在培养50天后,三个区域的微生物群落也发生了变化。Hydrogenophaga、Chitinophageaceae和Lentimicrobiaceae的丰度都增加了,这可能是氧化区和厌氧区难降解有机物的原因。功能基因分析表明,微生物群落的适应可能与细胞间的通讯和分子在细胞膜上的运输有关。微生物群落和功能基因分析揭示了微生物对工业废水的适应性。本研究为ICME提高A2O处理电镀废水的生物降解性提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identification of microbial communities and functional genes in an anaerobic-anoxic-oxic (A2O) process in responding to the iron-carbon micro-electrolysis (ICME) pre-treatment of electroplating wastewater based on high-throughput sequencing

Industrial wastewater contains high concentrations of refractory organic carbons, resulting in a low biodegradability difficult for the following biological treatments. The iron-carbon micro-electrolysis (ICME) was developed to break down the larger organic molecules and enhance the biodegradability. Previous ICME pretreatment coupling studies focused primarily on pharmaceutical, dye, and medical wastewater. In this study, the ICME was applied to treat the electroplating wastewater with surfactants, followed by an anaerobic-anoxic-oxic (A2O) biological process. When the ratio of the ICME-treated wastewater was low (10 %), the strike on nutrient removal efficiency (chemical oxidation demand, ammonia, total nitrogen, and total phosphate) was almost negligible. With the increase of ICME-treated wastewater up to 50 %, the removal efficiency gradually decreased, but the effluent water quality still met the discharge standard. Meanwhile, a shift of microbial communities in the three zones was also observed after the 50-day incubation. The abundance of Hydrogenophaga, Chitinophagaceae, and Lentimicrobiaceae all increased, which may be responsible for the degradation of refractory organics in the oxic and anaerobic zones. The functional gene analysis indicated that the adaptation of microbial communities was probably related to cell-to-cell communications and the transportation of molecules across the cell membrane. The microbial community and functional gene analysis revealed the adaptation of the microorganisms to the industrial wastewater. This study provides new insights into the ICME to enhance the biodegradability of electroplating wastewater for A2O treatment.

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