|
|
Nitrogen removal performance and metabolic mechanism in a continuous-flow oxygen-limited mainstream anammox biofilm system |
XIE Shu-ting1, HAI Yan2, ZHOU Xin2 |
1. School of Equipment Engineering, Shanxi Vocational University of Engineering Science and Technology, Jinzhong 030619, China; 2. Innovation Center for Postgraduate Education in Municipal Engineering of Shanxi, College of Environment and Ecology, Taiyuan University of Technology, Jinzhong 030600, China |
|
|
Abstract Achieving anaerobic ammonium oxidation (Anammox) in low ammonia nitrogen wastewater represents a significant challenge for municipal wastewater treatment plants. This study employed a mainstream Anammox continuous-flow oxygen-limited biofilm system (DO: 0.4~0.7mg/L) and investigated the nitrogen removal performance for treating simulated domestic sewage with low ammonia nitrogen content under different influent carbon-to-nitrogen (C/N) ratios (C/N: 2~5). Long-term experimental results indicated that a C/N ratio of 3.5~4.5 achieved over 85% total nitrogen (TN) removal efficiency. There was a positive correlation between activity of Anammox bacteria (SAA) and the nitrogen removal efficiency, with the highest SAA observed at a C/N ratio of 4. Additionally, the C/N ratio significantly influenced the extracellular polymeric substances (EPS) composition of the biofilm, with the highest protein-to-polysaccharide ratio (PN/PS) and most stable biofilm structure observed at C/N:4. Metagenomic analysis identified Candidatus Kuenenia stuttgartiensis and Candidatus Brocadia sinica as the dominant species, with relative abundances of 21.5% and 4.7%, respectively. A diverse microbial community, including complete ammonia oxidizers (Comammox), and heterotrophic denitrifiers, contributed to microbial community structure in the system. Nitrogen metabolic analysis further uncovered the involvement of partial denitrification genes (HZS、hdh) and Anammox genes (HZS、hdh) in nitrogen removal processes, thus ensuring stable and efficient mainstream nitrogen removal. Research findings are expected to provide a novel option of mainstream anammox-based nitrogen removal process for wastewater treatment plants.
|
Received: 14 July 2024
|
|
|
|
|
[1] Zhang M, Wang S, Ji B, et al. Towards mainstream deammonification of municipal wastewater: Partial nitrification-anammox versus partial denitrification-anammox [J]. Science of the Total Environment, 2019, 692:393-401. [2] Wett B, Podmirseg S M, Gómez-Brandón, et al. Expanding DEMON sidestream deammonification technology towards mainstream application [J]. Water Environment Research, 2015,87(12):2084-2089. [3] Lackner S, Gilbert E M, Vlaeminck S E, et al. Full-scale partial nitritation/anammox experiences-an application survey [J]. Water Research, 2014,55:292-303. [4] Cao Y, Kwok B H, Van Loosdrecht, et al. The influence of dissolved oxygen on partial nitritation/anammox performance and microbial community of the 200,000m3/d activated sludge process at the Changi water reclamation plant (2011 to 2016) [J]. Water Science and Technology, 2018,78(3):634-643. [5] Wang Z B, Liu X L, Bu C N, et al. Microbial diversity reveals the partial denitrification-anammox process serves as a new pathway in the first mainstream anammox plant [J]. Science of the Total Environment, 2021,764,142917. [6] Hou F, Zhang T, Peng Y, et al. Partial anammox achieved in full scale biofilm process for typical domestic wastewater treatment [J]. Frontiers of Environmental Science & Engineering, 2022,16:1-7. [7] Ni S, Lee P, Fessehaie A, et al. Enrichment and biofilm formation of Anammox bacteria in a non-woven membrane reactor [J]. Bioresource technology, 2010,101(6):1792-1799. [8] 谢弘超,王晓东,王伟刚,等.曝气策略调控CANON工艺降温降基质稳定运行 [J]. 中国环境科学, 2019,39(7):2781-2788.Xie H, Wang X, Wang W, et al. Stable operation of CANON system during temperature and substrate decreasing process via aerobic regime adjustment [J]. China Environmental Science, 2019,39(7): 2781-2788. [9] Zhu Z, Zhang L, Li X, et al. Robust nitrogen removal from municipal wastewater by partial nitrification anammox at ultra-low dissolved oxygen in a pure biofilm system [J]. Bioresource Technology, 2023, 369,128453. [10] 解舒婷.限氧同步硝化反硝化除磷(SNDPR)系统处理低碳氮比污水研究 [D]. 西安:长安大学, 2022.XIE S. Study on treatment of low carbon/nitrogen ratio wastewater by limited oxygen simultaneous nitrification and denitrification phosphorus removal (SNDPR) system [D]. Xi’an: Chang’an University, 2022. [11] Xu G, Zhou Y, Yang Q, et al. The challenges of mainstream deammonification process for municipal used water treatment [J]. Applied microbiology and biotechnology, 2015,99:2485-2490. [12] Trinh H, Lee S, Jeong G, et al. Recent developments of the mainstream anammox processes: challenges and opportunities [J]. Journal of Environmental Chemical Engineering, 2021,9(4):105583. [13] Cao Y, Tang J, Henze M, et al. The leakage of sewer systems and the impact on the‘black and odorous water bodies’and WWTPs in China [J]. Water Science and Technology, 2019,79(2):334-341. [14] Li X, Wang G, Chen J, et al. Deciphering the concurrence of comammox, partial denitrification and anammox in a single low-oxygen mainstream nitrogen removal reactor [J]. Chemosphere, 2022, 305:135409. [15] Miao L, Wang S, Cao T, et al. Advanced nitrogen removal from landfill leachate via Anammox system based on Sequencing Biofilm Batch Reactor (SBBR): Effective protection of biofilm [J]. Bioresource Technology, 2016,220:8-16. [16] Xu Z, Dai X, Chai X. Effect of different carbon sources on denitrification performance, microbial community structure and denitrification genes [J]. Science of the Total Environment, 2018,634: 195-204. [17] Jetten M, Niftrik V, Strous M, et al. Biochemistry and molecular biology of anammox bacteria [J]. Critical reviews in biochemistry and molecular biology, 2009,44(2/3):65-84. [18] Du R, Peng Y, Ji J, et al. Partial denitrification providing nitrite: Opportunities of extending application for anammox [J]. Environment International, 2019,131,105001. [19] Peng Z, Zhang Q, Li X, et al. Exploring and comparing the impacts of low temperature to endogenous and exogenous partial denitrification: the nitrite supply, transcription mechanism, and microbial dynamics [J]. Bioresource Technology, 2023,370,128568. [20] Wan J, Gu J, Zhao Q, et al. COD capture: a feasible option towards energy self-sufficient domestic wastewater treatment [J]. Scientific reports, 2016,6(1),25054. [21] Zhang Y, Deng J, Xiao X, et al. Insights on pretreatment technologies for partial nitrification/anammox processes: A critical review and future perspectives [J]. Bioresource Technology, 2023,384,129351. [22] Chen J, Hai Y, Zhang W, et al. Insights into deterioration and reactivation of a mainstream anammox biofilm reactor response to C/N ratio [J]. Journal of Environmental Management, 2022,320, 115780. [23] Miao L, Zhang Q, Wang S, et al. Characterization of EPS compositions and microbial community in an Anammox SBBR system treating landfill leachate [J]. Bioresource Technology, 2018,249,108-116. [24] Fuerst J, Sagulenko E. Beyond the bacterium: Planctomycetes challenge our concepts of microbial structure and function [J]. Nature Reviews Microbiology, 2011,9(6):403-413. [25] Daims H, Lebedeva E, Pjevac P, et al. Complete nitrification by Nitrospira bacteria [J]. Nature, 2015,528(7583):504-509. [26] Wang J, Yan X, Zhuang J, et al. Meta-Omics analysis of a formate sidestream-mediated partial nitritation-coupled anammox process [J]. ACS ES&T Water, 2023,3(2):510-519. [27] Zhu G, Wang X, Wang S, et al. Towards a more labor-saving way in microbial ammonium oxidation: a review on complete ammonia oxidization (comammox) [J]. Science of the Total Environment, 2022,829,154590. [28] Kim D, Han H, Yun T, Song, et al. Identification of nosZ-expressing microorganisms consuming trace N2O in microaerobic chemostat consortia dominated by an uncultured Burkholderiales [J]. The ISME Journal, 2022,16(9):2087-2098. [29] Sun H, Shi W, Cai C, et al. Responses of microbial structures, functions, metabolic pathways and community interactions to different C/N ratios in aerobic nitrification [J]. Bioresource Technology, 202,0, 311,123422. [30] Wang M, Huang G, Zhao Z, et al. Newly designed primer pair revealed dominant and diverse comammox amoA gene in full-scale wastewater treatment plants [J]. Bioresource Technology, 2018,270:580-587. [31] Wang Y, Ma X, Zhou S, et al. Expression of the nirS, hzsA, and hdh genes in response to nitrite shock and recovery in Candidatus Kuenenia stuttgartiensis [J]. Environmental Science & Technology, 2016,50(13):6940-6947. [32] Li, X, Wang, G, Chen, J, et al. Deciphering the concurrence of comammox, partial denitrification and anammox in a single low-oxygen mainstream nitrogen removal reactor [J]. Chemosphere, 2022,305,135409. |
|
|
|