Achieving deep autotrophic nitrogen removal in aerated biofilter driven by sponge iron: Performance and mechanism

生物滤池 厌氧氨氧化菌 化学 曝气 环境化学 铁质 氮气 废水 亚硝酸盐 硝酸盐 反硝化 铁细菌 制浆造纸工业 环境工程 细菌 环境科学 反硝化细菌 生物 生物化学 有机化学 工程类 遗传学
作者
Jianmin Li,Wei Zeng,Hong Liu,Mengjia Zhan,Haohao Miao
出处
期刊:Environmental Research [Elsevier BV]
卷期号:213: 113653-113653 被引量:19
标识
DOI:10.1016/j.envres.2022.113653
摘要

Different from anammox, the combination of Fe (III) reduction coupled to anaerobic ammonium oxidation (Feammox) and nitrate/nitrite dependent ferrous oxidation (NDFO) do not require to control nitrite accumulation. Furthermore, sponge iron can avoid continuous iron supplementation in practice and is a good iron source for the occurrence of Feammox and NDFO in wastewater treatment. Therefore, a biofilter using sponge iron as carrier treating low nitrogen wastewater was built. In this study, the performances of nitrogen removal were explored under different hydraulic retention times (HRT) and gas-water ratios in sponge iron biofilter. And the pathways of nitrogen removal were analyzed by activity tests. The results showed ammonia removal efficiency reached 94.1% and total inorganic nitrogen removal efficiency was up to 70.6% at HRT of 19 h and gas-water ratio of 18. Compared to nitrogen removal by adsorption under non-aeration, the activity tests showed that total inorganic nitrogen loss was caused by Feammox and NDFO after aeration. The results of microbial communities showed that appearances of nitrifier-Nitrosomonadaceae, Feammox bacteria-Clostridiaceae and NDFO bacteria-Gallionellaceae resulted in deep nitrogen removal after aeration, in which Nitrosomonadaceae and Clostridiaceae contributed to ammonia removal and Gallionellaceae contributed to nitrite/nitrate reduction to nitrogen gas. Therefore, it was feasible to achieve deep autotrophic nitrogen removal and Fe (II) and Fe (III) cycle in sponge iron biofilter.
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