• 제목/요약/키워드: Nitrite-Oxidizing Bacteria(NOB)

검색결과 12건 처리시간 0.018초

혐기소화액에서 분리한 아질산 산화세균의 생장특성 (Growth Characteristics of Nitrite Oxidizing Bacteria Isolated from Anaerobic Digestion Liquor)

  • 장현민;장재은;김영준
    • 유기물자원화
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    • 제18권1호
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    • pp.73-80
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    • 2010
  • 음식물류폐기물 혐기소화액으로부터 아질산성 질소를 산화하는 세균 2종, NOB1 과 NOB2를 분리하여 이들의 아질산성 질소산화능 및 온도, pH, 용존산소의 농도에 따른 생장특성을 조사하였다. 분리된 두 균주 모두 최적의 생장조건은 pH 7.0과 배양온도 $35^{\circ}C$로 나타났으며 용존산소의 농도가 높을수록 생장율이 상승하는 것으로 나타났다. 두 균주의 생장을 억제하는 요인으로는 pH와 용존산소가 효과적인 것으로 나타났는데, pH 5.0 및 9.0에서, 용존산소 1.0 ppm 이하에서 생장율이 현저히 감소하는 결과를 보여주었다. 특히, 아질산성 질소의 산화능력은 1.0 ppm 이하의 농도에서 1.0 ppm 이상에서 보다 약 50% 감소하는 것으로 나타났다. 두 균주의 생성율 및 질소산화능은 NOB2가 NOB1에 비해 약 2배 이상 높은 것으로 조사되었다.

Analysis of Free Ammonia Inhibition of Nitrite Oxidizing Bacteria Using a Dissolved Oxygen Respirometer

  • Kim, Dong-Jin;Lee, Dong-Ig;Cha, Gi-Cheol;Keller, Jurg
    • Environmental Engineering Research
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    • 제13권3호
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    • pp.125-130
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    • 2008
  • Free ammonia ($NH_3$-N) inhibition of nitrite-oxidizing bacteria (NOB) has been widely studied for partial nitrification (or nitrite accumulation) and denitrification via nitrite ($NO_2^-$-N) as a low-cost treatment of ammonium containing wastewater. The literature on $NH_3$-N inhibition of NOB, however, shows disagreement about the threshold $NH_3$-N concentration and its degree of inhibition. In order to clarify the confusion, a simple and cheap respirometric method was devised to investigate the effect of free ammonia inhibition of NOB. Sludge samples from an autotrophic nitrifying reactor were exposed to various $NH_3$-N concentrations to measure the maximum specific nitrite oxidation rate ($\hat{K}_{NO}$) using a respirometer. NOB biomass was estimated from the yield values in the literature. Free ammonia inhibition of nitrite oxidizing bacteria was reversible and the specific nitrite oxidation rate ($K_{NO}$) decreased from 0.141 to 0.116, 0.100, 0.097 and 0.081 mg $NO_2^-$-N/mg NOB h, respectively, as the $NH_3$-N concentration increased from 0.0 to 1.0, 4.1, 9.7 and 22.9 mg/L. A nonlinear regression based on the noncompetitive inhibition mode gave an estimate of the Inhibition concentration ($K_I$) of free ammonia to be 21.3 mg $NH_3$-N/L. Previous studies gave $\hat{K}_{NO}$ of Nitrobacter and Nitrospira as 0.120 and 0.032 mg/mg VSS h. The free ammonia concentration which inhibits Nitrobacter was $30{\sim}50\;mg$ $NH_3$-N/L and Nitrospira was inhibited at $0.04{\sim}0.08\;mg$ $NH_3$-N/L. The results support the fact that Nitrobacter is the dominant NOB in the reactor. The variations in the reported values of free ammonia inhibition may be due to the different species of nitrite oxidizers present in the reactors. The respirometric method provides rapid and reliable analysis of the behavior and community of the nitrite oxidizing bacteria.

폐수 질산화 시스템에서 아질산 산화 미생물의 분포 특성 연구 (A Study on the Distribution Characteristics of Nitrite Oxidizing Bacteria in Wastewater Nitrification Systems)

  • 김선희;김동진;유익근;차기철
    • 대한환경공학회지
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    • 제28권10호
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    • pp.1024-1030
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    • 2006
  • Genus Nitrospira와 Nitrobacter는 폐수 질산화 시스템의 대표적인 아질산 산화균으로 알려져 있다. Genus Nitrospira는 아질산 농도가 매우 낮은 조건에서도 이를 효율적으로 활용하는 K-strategists로 알려져 있는 반면에 Nitrobacter 종은 기질소비와 성장이 빠른 r-strategists로 알려져 왔다. 또한 유기물이나 용존산소도 아질산 산화균의 분포에 영향을 주는 것으로 알려져 있다. 본 연구에서는 아질산과 유기물, 용존산소가 복합적으로 작용하는 질산화 시스템에서 아질산 산화균의 분포와 경쟁에 어떻게 영향을 받는지를 검토하였다. 이를 위하여 실험실 규모의 질산화 생물반응기와 질산화-탈질을 수행하는 $A_2O$ 계열의 실제 폐수처리장에서 여러 항목과 두 종류의 아질산 산화균 분포를 측정, 비교하였다. 그 결과 아질산 농도는 평균 5 mg-N/L로 유지되며, 호기조건에서 유기물이 매우 낮게 유지되는 실험실 질산화 생물반응기는 Nitrobacter가, 호기-무산소 조건에서 질산화-탈질이 일어나고 아질산이 거의 없는 상태이며 유기물이 비교적 높게 유지되는 $A_2O$ 폐수처리장은 Nitrospira가 우점종으로 분포하였다. 이것은 여러 인자가 복합적으로 작용하는 상태에서는 아질산 산화균의 분포가 유기물과 용존산소 보다는 아질산 농도가 가장 중요한 인자임을 보여주며 기질 친화도가 낮지만 반응속도가 빠른 Nitrobacter가 r-strategist, genus Nitrospira는 기질친화도가 높은 K-strategist인 특성을 보임을 확인하였다.

Correlationship of Vertical Distribution for Ammonia Ion, Nitrate Ion and Nitrifying Bacteria in a Fixed Bed Nitrifying Biofilm

  • Choi, Gi-Chung;Byun, Im-Gyu
    • 한국환경과학회지
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    • 제21권12호
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    • pp.1455-1462
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    • 2012
  • The vertical distributions of nitrifying bacteria in aerobic fixed biofilm were investigated to evaluate the relationship between nitrification performance and microbial community at different HRT. Fluorescent in situ hybridization (FISH) and portable ion selective microelectrode system were adopted to analyze microbial communities and ions profiles according to the biofilm depth. Cilia media packed MLE (Modified Ludzack-Ettinger) like reactor composed of anoxic, aerobic I/II was operated with synthetic wastewater having COD 200 mg/L and $NH_4{^+}$-N mg/L at HRT of 6 hrs and 4 hrs. Total biofilm thickness of aerobic I, II reactor at 4 hrs condition was over two times than that of 6 hrs condition due to the sufficient substrate supply at 4 hrs condition (6 hrs; aerobic I 380 ${\mu}m$ and II 400 ${\mu}m$, 4 hrs; aerobic I 830 ${\mu}m$ and II 1040 ${\mu}m$). As deepen the biofilm detection point, the ratio of ammonia oxidizing bacteria (AOB) was decreased while the ratio of nitrite oxidizing bacteria (NOB) was maintained similar distribution at both HRT condition. The ratio of AOB was higher at 4 hrs than 6 hrs condition and $NH_4{^+}$-N removal efficiency was also higher at 4 hrs with 89.2% than 65.4% of 6 hrs. However, the ratio of NOB was decreased when HRT was reduced from 6 hrs to 4 hrs and $NO_2{^-}$-N accumulation was observed at 4 hrs condition. Therefore, it is considered that insufficient HRT condition could supply sufficient substrate and enrichment of AOB in all depth of fixed biofilm but cause decrease of NOB and nitrite accumulation.

폐수처리장치에서의 아질산염 산화 세균 군집 분석 (Community Analysis of Nitrite-Oxidizing Bacteria in Lab-Scale Wastewater Treatment System)

  • 정순재;이상일;이동훈
    • 미생물학회지
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    • 제44권1호
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    • pp.29-36
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    • 2008
  • 질소는 하수처리과정에서 제거되어야 하는 주요 오염물질 중의 하나이며, 세균 군집을 이용한 고도처리 시스템에서 생물학적 질소제거는 중요한 기술이다. 질산화반응은 생물학적 질소제거 시스템의 첫 단계로 미생물에 의해 진행된다. 암모니아는 암모니아산화세균에 의해 아질산염으로 산화되며, 그 후에 아질산염은 아질산염 산화세균에 의해 질산염으로 산화된다. 실험실 규모의 생물학적 질소제거 시스템인 변형된 eBAF 시스템, Nutrient removal laboratory 시스템과 반추기법을 적용한 rSBR 시스템의 질산화반응조 시료에서 16S rRNA 유전자를 이용한 terminal restriction fragment length polymorphism (T-RFLP) 방법으로 아질산염 산화세균군집을 분석하였다. 제한효소로 형성된 단편의 클러스터분석에서 Nitrobacter 군집은 각각의 폐수처리 시스템에 따라 군집의 차이가 있음이 나타났다. 그러나 Nitrospira 군집의 클러스터분석에서는 액체와 담체의 서식지 환경 차이에 의해 군집이 구분되었다.

Nitrospira Community Composition in Nitrifying Reactors Operated with Two Different Dissolved Oxygen Levels

  • Park, Hee-Deung;Noguera, Daniel R.
    • Journal of Microbiology and Biotechnology
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    • 제18권8호
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    • pp.1470-1474
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    • 2008
  • Nitrospira is a dominant member of nitrite-oxidizing bacteria (NOB) in nitrifying bioreactors as well as in natural habitats. In this study, Nitrospira NOB were investigated in the two nitrifying reactors operated with high and low dissolved oxygen (DO) concentrations for a period of 300 days. Phylogenetic and terminal restriction fragment length polymorphism analyses based on 168 rRNA gene sequences revealed that the Nitrospira community compositions of the two reactors during the early period related to group 1 and half of the Nitrospira community composition shifted to group 2 in the high-DO reactor after day 179, although there was no significant change in the low-DO reactor. These results suggested that DO was an important factor affecting Nitrospira community compositions in the nitrifying reactors.

2중 구조의 PVA/alginate 겔 비드에서의 독립영양 단일공정 질소제거효율 시뮬레이션 (Simulated Nitrogen Removal for Double-Layered PVA/Alginate Structure for Autotrophic Single-Stage Nitrogen Removal)

  • 배효관
    • 한국물환경학회지
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    • 제38권4호
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    • pp.171-176
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    • 2022
  • Recently, an autotrophic single-stage nitrogen removal (ASSNR) process based on the anaerobic ammonium oxidation (ANAMMOX) reaction has been proven as an economical ammonia treatment. It is highly evident that double-layered gel beads are a promising alternative to the natural biofilm for ASSNR because of the high mechanical strength of poly(vinyl alcohol) (PVA)/alginate structure and efficient protection of ANAMMOX bacteria from dissolved oxygen (DO) due to the thick outer layer. However, the thick outer layer results in severe mass transport limitation and consequent lowered bacterial activity. Therefore, the effects of the thickness of the outer layer on the overall reaction rate were tested in the biofilm model using AQUASIM for ammonia-oxidizing bacteria (AOB), nitrite-oxidizing bacteria (NOB) and ANAMMOX bacteria. A thickness of 0.5~1.0 mm is preferred for the maximum total nitrogen (TN) removal. In addition, a DO of 0.5 mg/L resulted in the best total nitrogen removal. A higher DO induces NOB activity and consequent lower TN removal efficiency. The optimal density of AO B and NO B density was 1~10% for a 10% ANAMMOX bacterial in the double-layered PVA/alginate gel beads. The real effects of operating parameters of the thickness of the outer layer, DO and concentrations of biomass balance should be intensively investigated in the controlled experiments in batch and continuous modes.

Modified BAF 공정에서 HRT 및 역세주기가 질산화 미생물의 군집에 미치는 영향 (Effects of Nitrifying Bacterial Communities with Different HRTs and Backwashing Periods in Modified BAF Process)

  • 정철수;박정진;주동진;권수연;최원석;변임규;박태주
    • 한국물환경학회지
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    • 제23권6호
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    • pp.920-926
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    • 2007
  • The upflow Biobead$^{(R)}$ process, one of biological aerated filters (BAF), which was used commercially, invented for removal of organic materials and nitrification. This process was modified to enhance the ability of denitrification through the induction of pre-anoxic tank. In this research, we investigated the effects of hydraulic retention time (HRT) and backwashing period in aerobic tank. The characteristics of nitrifying bacteria, which are composed of ammonia-oxidizing bacteria (AOB) and nitrite-oxidizing bacteria (NOB), also investigated using fluorescence in situ hybridization (FISH). Even though the HRT was shortened, the efficiency of nitrification was not decreased when the organic loading rate and ammonium-nitrogen loading rate were $2.10kg/m^3/day$ and $0.25kg/m^3/day$, respectively. And then the distribution ratios of AOB and NOB showed the similar patterns. However, when the backwashing period was lengthened from 12 hours to 24 hours in aerobic 1 tank, the nitrification efficiency was decreased to 63.9% from 89.2%. The results of FISH explained that this decrease of nitrification efficiency was caused by the decrease of distribution ratio of AOB in aerobic 1 tank. The nitrification efficiencies of aerobic 1 and aerobic 2 tank were increased when the backwashing period was lengthened because of relative high distribution ratios of nitrifying bacteria.

Microbial Community of Tannery Wastewater Involved in Nitrification Revealed by Illumina MiSeq Sequencing

  • Ma, Xiaojian;Wu, Chongde;Jun, Huang;Zhou, Rongqing;Shi, Bi
    • Journal of Microbiology and Biotechnology
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    • 제28권7호
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    • pp.1168-1177
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    • 2018
  • The aim of this study was to investigate the microbial community of three tannery wastewater treatment plants (WWTPs) involved in nitrification by Illumina MiSeq sequencing. The results showed that highly diverse communities were present in tannery wastewater. A total of six phyla, including Proteobacteria (37-41%), Bacteroidetes (6.04-16.80), Planctomycetes (3.65-16.55), Chloroflexi (2.51-11.48), Actinobacteria (1.91-9.21), and Acidobacteria (3.04-6.20), were identified as the main phyla, and Proteobacteria dominated in all the samples. Within Proteobacteria, Beta-proteobacteria was the most abundant class, with the sequence percentages ranging from 9.66% to 17.44%. Analysis of the community at the genus level suggested that Thauera, Gp4, Ignavibacterium, Phycisphaera, and Arenimonas were the core genera shared by at least two tannery WWTPs. A detailed analysis of the abundance of ammonia-oxidizing bacteria (AOB) and nitrite-oxidizing bacteria (NOB) indicated that Nitrosospira, Nitrosomonas, and Nitrospira were the main AOB and NOB in tannery wastewater, respectively, which exhibited relatively high abundance in all samples. In addition, real-time quantitative PCR was conducted to validate the results by quantifying the abundance of the AOB and total bacteria, and similar results were obtained. Overall, the results presented in this study may provide new insights into our understanding of key microorganisms and the entire community of tannery wastewater and contribute to improving the nitrogen removal efficiency.

Impact of Temperature and Alkalinity on Nitrogen Removal in the Start-up Period of Partial Nitrification in a Sequence Batch Reactor

  • Nguyen Van Tuyen;Tran Hung Thuan;Chu Xuan, Quang;Nhat Minh Dang
    • 공업화학
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    • 제34권5호
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    • pp.541-547
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    • 2023
  • The effect of temperature and influent alkalinity/ammonia (K/A) ratio on the start-up of the partial nitrification (PN) process for an activated sludge-based domestic wastewater treatment was studied. Two different sequence batch reactors (SBR) were operated at 26 ℃ and 32 ℃. The relationship between temperature and the concentration of free ammonia (FA) and free acid nitrite (FNA) was investigated. A stable PN process was achieved in the 32 ℃ reactor when the influent ammonium concentration was lower than 150 mg-N/L. In contrast, the PN process in the 26 ℃ reactor had a higher nitrite accumulation rate (NAR) and ammonium removal efficiency (ARE) when the influent ammonia concentration was increased to more than 150 mg-N/L. Then three different ranges of the K/A ratio were applied to an SBR reactor. In the K/A range of 2.48~1.65, the SBR reactor achieved the highest NAR ratio (75.78%). This ratio helps to achieve the appropriate level of alkalinity to maintain a stable pH and provide a sufficient amount of inorganic carbon source for the activity of microorganisms. At the same time, FA and FNA values also reached the threshold to inhibit nitrite-oxidizing bacteria (NOB) without a significant effect on ammonia-oxidizing bacteria (AOB). Results showed that the control of temperature and K/A ratio during the start-up period may be important in establishing a stable and steady PN process for the treatment of domestic wastewater.