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Effect of long - short term starvation on initiation of CANON process |
YANG Zong-yi1, LI Jun1, ZHANG Kai2, GAO Peng1, TANG Peng1 |
1. National Engineering Laboratory of Urban Sewage Advanced Treatment and Resource Utilization Technology, Faculty of Architecture, Civil and Transportation Engineering, Beijing University of Technology, Beijing 100124, China; 2. CECEP Engineering Technology Research Institute, Beijing 100083, China |
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Abstract A sequencing batch reactor (SBR) was used to start the completely autotrophic nitrogen removal over nitrite (CANON) process. The effects of long-term starvation stress and short-term starvation regulation on nitrogen removal were investigated. The activities of functional bacteria before and after short-term starvation were tested to analyze the inhibitory effect of repeated short-term starvation on nitrite oxidizing bacteria (NOB) under shortened recovery time.Microbial sequencing was conducted at different stages of CANON initiation process to analyze changes in community structure. The results show that the TN removal efficiency (NRE) of the system can reach 62.34% when the system is restored 7days after chronic starvation. The short-term starvation-recovery mode can accelerate the start-up speed of the process, and successfully control the ΔNO3--N/ΔNH4+-N in SBR between 0.11. The average removal rate of ammonia removal efficiency (ARE) exceeds 95% and the average NRE reaches 79.45%. After short-term starvation regulation, the NOB activity decreased from 91.32mgN/(gVSS·d) to 45.40mgN/(gVSS·d), and increased to 219.25mgN/(gVSS·d) compared with the anammox activity (SAA), ensuring the CANON nitrogen removal performance. High-throughput sequencing has shown that the Aerobic Ammonia-Oxidation Bacteria (AerAOB) functional bacterium Nitrosomonas can recover quickly after experiencing long-term starvation. Candidatus Kuenenia has the ability to resist long-term starvation, and the relative abundance of Candidatus Kuenenia is as high as 69.04% after 7days of recovery. The relative abundance of Candidatus Kuenenia decreased in the stable recovery, but reached 61.19% after the process was started, thus achieving the enrichment of Anaerobic Ammonia-Oxidation Bacteria (AnAOB). The CANON process was able to recover from long-term starvation stress, and short-term starvation regulation was beneficial for process efficiency.
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Received: 06 December 2022
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[1] |
Wu P, Zhang X X, Wang X Z, et al. Characterization of the start-up of single and two-stage Anammox processes with real low-strength wastewater treatment [J]. Chemosphere, 2020,245:125572.
|
[2] |
阮蓉蓉.城市污水短程硝化/厌氧氨氧化/反硝化一体化工艺与技术 [D]. 北京:北京工业大学, 2020. Ruan R R. Technology of signal stage partial nitritation, anammox and denitrification process treating real municipal sewage [D]. Beijing: Beijing University of Technology, 2019.
|
[3] |
王增花,王 博,宫小斐,等. FNA处理絮体污泥恢复城市污水PN/A工艺短程硝化 [J]. 中国环境科学, 2019,39(8):3308-3315. Wang Z H, Wang B, Gong X F, et al. Restoration of nitritation of the sewage partial nitritation/anammox (PN/A) process using free nitrous acid to treat flocculent sludge [J]. China Environmental Science, 2019,39(8):3308-3315.
|
[4] |
Morgenroth E, Obermayer A, Arnold E, et al. Effect of long-term idle periods on the performance of sequencing batch reactors [J]. Water Science & Technology, 2000,41(1):105-113.
|
[5] |
Ali M, Okabe S. Anammox-based technologies for nitrogen removal: Advances in process start-up and remaining issues [J]. Chemosphere, 2015,141:144-153.
|
[6] |
李 冬,刘志诚,徐贵达,等.基于间歇饥饿的SNAD工艺运行 [J]. 环境科学, 2020,41(1):337-344. Li D, Liu Z C, Xu G D, et al. Effects of intermittent starvation on the operation of the SNAD process [J]. Environmental Science, 2020,41(1):337-344.
|
[7] |
Xing B, Guo Q, Jiang X, et al. Long-term starvation and subsequent reactivation of anaerobic ammonium oxidation (anammox) granules [J]. Chemical Engineering Journal, 2016,287:575-584.
|
[8] |
国家环境保护总局.水和废水分析监测方法 [M]. 第四版.北京:中国环境科学出版社, 2002. State Environmental Protection Administration of China. Water and wastewater test and analysis methods [M]. Fourth edition. Beijing: China Environmental Science Press, 2002.
|
[9] |
Sliekers A O, Derwort N, Campos Gomez J L, et al. Completely autotrophic nitrogen removal over nitrite in one single reactor [J]. Water Research, 2002,36:2475-2482.
|
[10] |
Zhang K, Li J, Zheng Z M, et al. Analyzing the sludge characteristics and microbial communities of biofilm and activated sludge in the partial nitrification/anammox process [J]. Journal of Water Process Engineering, 2022,46:102618.
|
[11] |
Liu S T, Yang F L, Xue Y, et al. Evaluation of oxygen adaptation and identification of functional bacteria composition for anammox consortium in non-woven biological rotating contactor [J]. Bioresource Technology, 2008,99:8273-8279.
|
[12] |
叶丽红.基于饥饿胁迫的自养脱氮性能优化及微生物特性研究 [D]. 北京:北京工业大学, 2019. Ye L H. The performance optimization and microbial characteristics of autotrophic nitrogen removal process with starvation stress [D]. Beijing: Beijing University of Technology, 2019.
|
[13] |
Liu G Q, Wang J M. Long-term low DO enriches and shifts nitrifier community in activated sludge [J]. Environmental Science and Technology, 2013,47:5109-5117.
|
[14] |
Chen G, Zhang Y, Wang X, et al. Optimizing of operation strategies of the single-stage partial nitrification-anammox process [J]. Journal of Cleaner Production, 2020,256:120667.
|
[15] |
李 冬,高雪健,张 杰,等.不同曝气密度对CANON工艺启动的影响 [J]. 环境科学, 2019,40(2):829-836. Li D, Gao X J, Zhang J, er al. Effect of aeration density on start-up of CANON process [J]. Environmental Science, 2019,40(2):829-836.
|
[16] |
Guven D, Dapena A, Kartal B, et al. Propionate oxidation by and methanol inhibition of anaerobic ammonium-oxidizing bacteria [J]. Applied and Environmental Microbiology, 71(2):1066-1071.
|
[17] |
Ye L H, Li D, Zhang J, et al. Start-up and performance of partial nitritation using short-term starvation [J]. Bioresource Technology, 2019,276:190-198.
|
[18] |
Liu W L, Yang Q, Ma B, et al. Rapid achievement of nitritation using aerobic starvation [J]. Environmental Science & Technology, 2017, 51(7):4001-4008.
|
[19] |
Ye L H, Li D, Zhang J, et al. Resuscitation of starved anaerobic ammonium oxidation sludge system: impacts of repeated short-term starvation [J]. Bioresource Technology, 2018,263:458-466.
|
[20] |
汪彩华,郑 平,唐崇俭,等.间歇性饥饿对厌氧氨氧化菌混培物保藏特性的影响 [J]. 环境科学学报, 2013,33(1):36-43. Wang C H, Zheng P, Tang C J, et al. Effects of intermittent starvation on preservation characteristics of ANAMMOX bacteria [J]. Acta Scientiae Circumstantiae, 2013,33(1):36-43.
|
[21] |
黄佳路.厌氧氨氧化污泥的储存及活性恢复研究 [D]. 哈尔滨:哈尔滨工业大学, 2017. Huang J L. Research on storage and reactivation of anaerobic ammonium oxidation sludge [D]. Harbin: Harbin Institute of Technology, 2017.
|
[22] |
Liu Y Q, Tay J H. Characteristics and stability of aerobic granules cultivated with different starvation time [J]. Applied Microbiology and Biotechnology, 2007,75(1):205-210.
|
[23] |
何丽金,王少坡,毕艳孟,等.长期饥饿后SPNA微颗粒污泥系统性能恢复 [J]. 中国环境科学, 2021,41(12):5646-5653. He L J, Wang S P, Bi Y M, et al. Performance recovery of SPNA micro-granular sludge system after long-term starvation [J]. China Environmental Science, 2021,41(12):5646-5653.
|
[24] |
Zhao Y P, Liu S F, Jiang B, et al. Genome-centered metagenomics analysis reveals the symbiotic organisms possessing ability to cross-feed with anammox bacteria in anammox consortia [J]. Environmental Science and Technology, 2018,52:11285-11296.
|
[25] |
Fang A R, Feng K, Mei X X, et al. The simultaneous recruitment of anammox granules and biofilm by a sequential immobilization and granulation approach [J]. Chemical Engineering Journal, 2021,417: 128041.
|
[26] |
Wang C, Xie B, Han L, et al. Study of anaerobic ammonium oxidation bacterial community in the aged refuse bioreactor with 16S rRNA gene library technique [J]. Bioresource Technology, 2013,145:65-70.
|
[27] |
Niftrik L V, Geerts W J C, Donselaar E G V, et al. Linking ultrastructure and function in four genera of anaerobic ammonium-oxidizing bacteria: cell plan, glycogen storage, and localization of cytochrome c proteins [J]. Journal of Bacteriology, 2008,190(2): 708-711.
|
[28] |
Ma X, Wang Y Y. Anammox bacteria exhibit capacity to withstand long-term starvation stress: A proteomic-based investigation of survival mechanisms [J]. Chemosphere, 2018,211:952-961.
|
[29] |
Geets J, Boon N, Verstraete W. Strategies of aerobic ammonia-oxidizing bacteria for coping with nutrient and oxygen fluctuations [J]. FEMS Microbiology Ecology, 2006,58(1):1-13.
|
|
|
|