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利用剩余污泥碱性发酵液作为外加碳源提高脱氮效率。

Enhancing denitrification efficiency for nitrogen removal using waste sludge alkaline fermentation liquid as external carbon source.

机构信息

College of Environmental Science and Engineering, Ocean University of China, Qingdao, 266100, China.

Key Laboratory of Marine Environmental and Ecology, Ministry of Educatin, Ocean University of China, Qingdao, 266100, China.

出版信息

Environ Sci Pollut Res Int. 2019 Feb;26(5):4633-4644. doi: 10.1007/s11356-018-3944-4. Epub 2018 Dec 18.

Abstract

External carbon source was usually added to enhance denitrification efficiency for nitrogen removal in wastewater treatment. In this study, waster sludge alkaline fermentation liquid was successfully employed as an alternative carbon source for biological denitrification. The denitrification performance was studied at different C/Ns (carbon-to-nitrogen ratios) and HRTs (hydraulic retention times). A C/N of 7 and an HRT of 8 h were the optimal conditions for denitrification. The nitrate removal efficiency of 96.4% and no obvious nitrite accumulation in the effluent were achieved under the optimal conditions with a low soluble chemical oxygen demand (SCOD) level. The sludge carbon source utilization was analyzed and showed that the volatile fatty acids (VFAs) were prior utilized than proteins and carbohydrates. The excitation-emission matrix (EEM) spectroscopy with fluorescence regional integration (FRI) was adopted to analyze the compositional and variations of dissolved organic matters (DOM). Moreover, a high denitrification rate (V) and potential (P) with low heterotroph anoxic yield (Y) was exhibited at the optimal C/N and HRT condition, indicating the better denitrification ability and organic matter utilization efficiencies.

摘要

在废水处理中,通常会添加外部碳源以提高反硝化效率来去除氮。在本研究中,成功地将废污泥碱性发酵液用作生物反硝化的替代碳源。研究了不同 C/N(碳氮比)和 HRT(水力停留时间)下的反硝化性能。C/N 为 7 和 HRT 为 8 h 是反硝化的最佳条件。在低可溶性化学需氧量(SCOD)水平下,采用最佳条件可实现 96.4%的硝酸盐去除效率,且出水中无明显亚硝酸盐积累。分析了污泥碳源的利用情况,表明挥发性脂肪酸(VFAs)优先于蛋白质和碳水化合物被利用。采用荧光区域积分(FRI)的激发-发射矩阵(EEM)光谱分析了溶解性有机物(DOM)的组成和变化。此外,在最佳 C/N 和 HRT 条件下,表现出较高的反硝化速率(V)和潜力(P)以及较低的异养缺氧产率(Y),表明具有更好的反硝化能力和有机物利用效率。

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