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[序批式添加生物催化剂对厌氧氨氧化工艺的影响]

[Effect of sequential biocatalyst addition on Anammox process].

作者信息

Tang Chongjian, Zheng Ping, Chen Jianwei

机构信息

Department of Environmental Engineering, Zhejiang University, Hangzhou 310029, China.

出版信息

Sheng Wu Gong Cheng Xue Bao. 2011 Jan;27(1):1-8.

Abstract

Anaerobic ammonium oxidation (Anammox) process is a high-rate nitrogen removal technology that has been applied in sludge dewatering effluents treatment with nitrogen removal rate as high as 9.5 kg/(m x d). However, due to the slow growth rate of the autotrophic Anammox bacteria and the susceptivity to environmental conditions, the start-up of Anammox process is very long; the operation is unstable; and the nitrogen removal from organic-containing and/or toxicant-containing ammonium-rich wastewaters using Anammox process becomes difficult. Thus, the application of this high-rate process is significantly limited. In this paper, a newly-developed Anammox process with sequential biocatalyst (Anammox biomass) addition was established based on the procedure in fermentation engineering. We introduced the Anammox process with sequential biocatalyst addition on start-up, stable operation and the treatment of organic-containing and toxicant-containing ammonium-rich wastewaters. Results show that supplementing high-activity Anammox biomass into reactors will increase the amount of as well as the ratio of Anammox bacteria. Thus, the innovative Anammox process with sequential biocatalyst addition not only accelerates the start-up course, but also enhances the stability of Anammox process. Furthermore, it overcomes the drawbacks of wastewaters containing high organic content and toxic substances. Therefore, the application of Anammox process may be further enlarged.

摘要

厌氧氨氧化(Anammox)工艺是一种高效的脱氮技术,已应用于污泥脱水废水处理,脱氮率高达9.5千克/(立方米·天)。然而,由于自养厌氧氨氧化细菌生长速率缓慢且对环境条件敏感,厌氧氨氧化工艺的启动时间很长;运行不稳定;并且使用厌氧氨氧化工艺从含有机物和/或有毒物质的富铵废水中脱氮变得困难。因此,这种高效工艺的应用受到显著限制。本文基于发酵工程的程序,建立了一种新开发的顺序添加生物催化剂(厌氧氨氧化生物质)的厌氧氨氧化工艺。我们介绍了顺序添加生物催化剂的厌氧氨氧化工艺在启动、稳定运行以及处理含有机物和有毒物质的富铵废水方面的情况。结果表明,向反应器中补充高活性厌氧氨氧化生物质会增加厌氧氨氧化细菌的数量和比例。因此,创新的顺序添加生物催化剂的厌氧氨氧化工艺不仅加速了启动过程,还提高了厌氧氨氧化工艺的稳定性。此外,它克服了高有机物含量和有毒物质废水的缺点。因此,厌氧氨氧化工艺的应用可能会进一步扩大。

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