Dual-edged effects and mechanisms of hydroxylamine in partial denitrification-anaerobic ammonium oxidation system

The combination of partial denitrification (PD) and anaerobic ammonium oxidation (anammox) is a novel and promising nitrogen removal process. Regulating the synergistic reaction between denitrifiers and anammox bacteria (AnAOB) is the key to achieving stable and efficient PD-anammox performance. In...

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Veröffentlicht in:Environmental research 2023-10, Vol.235, p.116664, Article 116664
Hauptverfasser: Zhang, Qi, Lin, Lan, Chen, Yuqi, Wang, Yuzheng, Li, Xiao, Li, Linxi, Cao, Wenzhi, Zhang, Yanlong
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container_start_page 116664
container_title Environmental research
container_volume 235
creator Zhang, Qi
Lin, Lan
Chen, Yuqi
Wang, Yuzheng
Li, Xiao
Li, Linxi
Cao, Wenzhi
Zhang, Yanlong
description The combination of partial denitrification (PD) and anaerobic ammonium oxidation (anammox) is a novel and promising nitrogen removal process. Regulating the synergistic reaction between denitrifiers and anammox bacteria (AnAOB) is the key to achieving stable and efficient PD-anammox performance. In this study, 10 mg/L of hydroxylamine (NH2OH) was considered to efficiently promote the bacterial activity, microbial energy flow, and the synergy of functional microflora. As a result, the nitrogen removal rate (NRR) significantly increased from 0.05 to 0.30 g N/L/d in parallel with an increase in the nitrogen loading rate (NLR) from 0.10 to 0.40 g N/L/d. However, the dual-edged effect of NH2OH was also confirmed. The long-term presence of NH2OH caused overgrowth of complete-denitrifying bacteria and decreased the NRR to 0.11 g N/L/d. Additionally, NH2OH enhanced nitrous oxide (N2O) emissions via chemical pathways as well as enhanced denitrification Fortunately, the inhibition caused by NH2OH was reversible by stopping the dosing, the reactor restored to stable operation with an NRR of 0.27 g N/L/d. Analysis of metabolic intensity and pathways revealed the effecting process and mechanism of NH2OH on the PD-anammox system. This study verified the dual-edged effects and mechanisms of NH2OH, therefore proving a theoretical basis and technical reference for the application of PD-anammox. [Display omitted] •Dual-edged effects and mechanisms of NH2OH were confirmed in the PD-anammox system.•NH2OH promoted microbial energy flow, and the synergy of AnAOB and denitrifiers.•Long-term presence of NH2OH caused overgrowth of complete-denitrifying bacteria.•NH2OH increased N2O through chemical reactions as well as enhanced denitrification.•The inhibition caused by NH2OH was reversible by stopping the dosing.
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Regulating the synergistic reaction between denitrifiers and anammox bacteria (AnAOB) is the key to achieving stable and efficient PD-anammox performance. In this study, 10 mg/L of hydroxylamine (NH2OH) was considered to efficiently promote the bacterial activity, microbial energy flow, and the synergy of functional microflora. As a result, the nitrogen removal rate (NRR) significantly increased from 0.05 to 0.30 g N/L/d in parallel with an increase in the nitrogen loading rate (NLR) from 0.10 to 0.40 g N/L/d. However, the dual-edged effect of NH2OH was also confirmed. The long-term presence of NH2OH caused overgrowth of complete-denitrifying bacteria and decreased the NRR to 0.11 g N/L/d. Additionally, NH2OH enhanced nitrous oxide (N2O) emissions via chemical pathways as well as enhanced denitrification Fortunately, the inhibition caused by NH2OH was reversible by stopping the dosing, the reactor restored to stable operation with an NRR of 0.27 g N/L/d. Analysis of metabolic intensity and pathways revealed the effecting process and mechanism of NH2OH on the PD-anammox system. This study verified the dual-edged effects and mechanisms of NH2OH, therefore proving a theoretical basis and technical reference for the application of PD-anammox. [Display omitted] •Dual-edged effects and mechanisms of NH2OH were confirmed in the PD-anammox system.•NH2OH promoted microbial energy flow, and the synergy of AnAOB and denitrifiers.•Long-term presence of NH2OH caused overgrowth of complete-denitrifying bacteria.•NH2OH increased N2O through chemical reactions as well as enhanced denitrification.•The inhibition caused by NH2OH was reversible by stopping the dosing.</description><identifier>ISSN: 0013-9351</identifier><identifier>ISSN: 1096-0953</identifier><identifier>EISSN: 1096-0953</identifier><identifier>DOI: 10.1016/j.envres.2023.116664</identifier><identifier>PMID: 37451572</identifier><language>eng</language><publisher>Netherlands: Elsevier Inc</publisher><subject>Hydroxylamine ; Microbial synergy and competition ; Nitrogen removal pathway ; Nitrous oxide ; PD-Anammox</subject><ispartof>Environmental research, 2023-10, Vol.235, p.116664, Article 116664</ispartof><rights>2023 Elsevier Inc.</rights><rights>Copyright © 2023 Elsevier Inc. 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Regulating the synergistic reaction between denitrifiers and anammox bacteria (AnAOB) is the key to achieving stable and efficient PD-anammox performance. In this study, 10 mg/L of hydroxylamine (NH2OH) was considered to efficiently promote the bacterial activity, microbial energy flow, and the synergy of functional microflora. As a result, the nitrogen removal rate (NRR) significantly increased from 0.05 to 0.30 g N/L/d in parallel with an increase in the nitrogen loading rate (NLR) from 0.10 to 0.40 g N/L/d. However, the dual-edged effect of NH2OH was also confirmed. The long-term presence of NH2OH caused overgrowth of complete-denitrifying bacteria and decreased the NRR to 0.11 g N/L/d. Additionally, NH2OH enhanced nitrous oxide (N2O) emissions via chemical pathways as well as enhanced denitrification Fortunately, the inhibition caused by NH2OH was reversible by stopping the dosing, the reactor restored to stable operation with an NRR of 0.27 g N/L/d. Analysis of metabolic intensity and pathways revealed the effecting process and mechanism of NH2OH on the PD-anammox system. This study verified the dual-edged effects and mechanisms of NH2OH, therefore proving a theoretical basis and technical reference for the application of PD-anammox. 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Regulating the synergistic reaction between denitrifiers and anammox bacteria (AnAOB) is the key to achieving stable and efficient PD-anammox performance. In this study, 10 mg/L of hydroxylamine (NH2OH) was considered to efficiently promote the bacterial activity, microbial energy flow, and the synergy of functional microflora. As a result, the nitrogen removal rate (NRR) significantly increased from 0.05 to 0.30 g N/L/d in parallel with an increase in the nitrogen loading rate (NLR) from 0.10 to 0.40 g N/L/d. However, the dual-edged effect of NH2OH was also confirmed. The long-term presence of NH2OH caused overgrowth of complete-denitrifying bacteria and decreased the NRR to 0.11 g N/L/d. Additionally, NH2OH enhanced nitrous oxide (N2O) emissions via chemical pathways as well as enhanced denitrification Fortunately, the inhibition caused by NH2OH was reversible by stopping the dosing, the reactor restored to stable operation with an NRR of 0.27 g N/L/d. Analysis of metabolic intensity and pathways revealed the effecting process and mechanism of NH2OH on the PD-anammox system. This study verified the dual-edged effects and mechanisms of NH2OH, therefore proving a theoretical basis and technical reference for the application of PD-anammox. [Display omitted] •Dual-edged effects and mechanisms of NH2OH were confirmed in the PD-anammox system.•NH2OH promoted microbial energy flow, and the synergy of AnAOB and denitrifiers.•Long-term presence of NH2OH caused overgrowth of complete-denitrifying bacteria.•NH2OH increased N2O through chemical reactions as well as enhanced denitrification.•The inhibition caused by NH2OH was reversible by stopping the dosing.</abstract><cop>Netherlands</cop><pub>Elsevier Inc</pub><pmid>37451572</pmid><doi>10.1016/j.envres.2023.116664</doi><orcidid>https://orcid.org/0000-0002-9132-5585</orcidid></addata></record>
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subjects Hydroxylamine
Microbial synergy and competition
Nitrogen removal pathway
Nitrous oxide
PD-Anammox
title Dual-edged effects and mechanisms of hydroxylamine in partial denitrification-anaerobic ammonium oxidation system
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