• 제목/요약/키워드: anammox

검색결과 48건 처리시간 0.026초

혐기성 암모늄 산화 반응기 내 붉은색 입상슬러지의 미생물 군집구조 분석 (Analysis on the Microbial Community Structure of Red Granule in the Anaerobic Ammonium Oxidation Reactor)

  • 배효관;박경순;정윤철;정진영
    • 대한환경공학회지
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    • 제28권10호
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    • pp.1055-1064
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    • 2006
  • 본 연구소에서는 혐기성 입상슬러지를 충진한 UASB 반응기와 탄소섬유를 충진한 배양기를 조합하여 아주 느린 성장특성을 가진 혐기성 암모늄 산화균의 배양을 시도하였다. 연속배양 180일 이후, 유입질소부하가 0.6 kg $N/m^3-d$였을 때, 평균 질소전환율은 0.54 kg $N/m^3-d$로 나타났다. 검은 혐기성 입상슬러지는 연속배양시간이 지남에 따라 갈색과 붉은 색으로 변화되었으며, anammox 반응기는 붉은색 입상슬러지가 많을수록 높은 활성도를 나타내었다. 따라서, 붉은색 입상슬러지를 채취하여 분자생물학적 방법을 이용하여 미생물 군집구조를 분석하였다. 클로닝 및 계통분류학적 분지도 작성 결과, anammox UASB 반응조의 붉은색 입상슬러지에서 발견된 미생물 종류는 anammox 미생물과 더불어 문단위의 4가지 다른 미생물, Proteobacteria, Acidobacteria, Chlorobi와 Chloroflexi로 나타났다. Anammox UASB 반응조내의 붉은색 입상슬러지에서는 clone의 개수를 기준으로 anammox 미생물이 약 25%가 존재하였고 $\beta$-proteobacteria가 우점하고 있는 양상을 보여주었으며, 본 연구의 클로닝 정보와 AMX368 FISH 탐침자를 이용해 in silico 실험을 수행한 결과 AMX368과 정확히 들어맞는 anammox 미생물 clone 하나와 하나의 염기서열이 변이를 일으킨 11개의 anammox 미생물 clone을 확인할 수 있었다. 사상균 형태의 Chloroflexi는 혐기조건 입상 슬러지의 형성과 관련이 있는 것으로 판단되었다. FISH 수행결과, anammox 미생물은 붉은색 입상 슬러지에 우점하고 있는 것으로 나타났다.

SHARON/ANAMMOX 결합공정에서 슬러지의 입상화와 특성 (Granulation and Characteristics of Sludges in the Combined SHARON/ANAMMOX Processes)

  • 황인수;민경석
    • 한국물환경학회지
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    • 제22권2호
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    • pp.300-307
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    • 2006
  • The combined SHARON (Single reactor system for High ammonium Removal Over Nitrite)-ANAMMOX (Anaerobic ammonium oxidation) reactor were operated in mesophilic condition ($35^{\circ}C$). In this study, microbial granulation and characteristics of SHARON and ANAMMOX sludges were investigated using settling test, Scanning Electron Microscopy (SEM) and Fluorescence In Situ Hybridization (FISH). In SHARON reactor, Aerobic granulation with diameter of 1.5~2.5 mm was accomplished but aerobic granulation was weaker than anaerobic granular sludge. Initial seed sludge of ANAMMOX reactor was used as attached media for biofilm growth. ANAMMOX sludge was more compact and rounder rather than seed sludge. Though ANAMMOX sludge has high activity, it has lower settling ability than the seed granule. The color of ANAMMOX sludge was changed from dark to redish brown granular with diameter of 1~2 mm. In FISH of ANAMMOX sludge, high fraction of Candidatus B. stuttgartiensis which paid great role of nitrogen conversion was detected. Also, FISH results reveals that ANAMMOX bacteria inhabit at inner parts near surface, having advantages in utilization of substrates and protection from oxygen inhibition.

Detection and Potential Abundances of Anammox Bacteria in the Paddy Soil

  • Khanal, Anamika;Lee, Seul;Lee, Ji-Hoon
    • 한국환경농학회지
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    • 제39권1호
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    • pp.26-35
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    • 2020
  • BACKGROUND: Microbes that govern a unique biochemical process of oxidizing ammonia into dinitrogen gas, such as anaerobic ammonium oxidation (anammox) have been reported to play a pivotal role in agricultural soils and in oceanic environments. However, limited information for anammox bacterial abundance and distribution in the terrestrial habitats has been known. METHODS AND RESULTS: Phylogenetic and next-generation sequencing analyses of bacterial 16S rRNA gene were performed to examine potential anammox bacteria in paddy soils. Through clone libraries constructed by using the anammox bacteria-specific primers, some clones showed sequence similarities with Planctomycetes (87% to 99%) and anammox bacteria (94% to 95%). Microbial community analysis for the paddy soils by using Illumina Miseq sequencing of 16S rRNA gene at phylum level was dominated by unclassified Bacteria at 33.2 ± 7.6%, followed by Chloroflexi at 20.4 ± 2.0% and Acidobacteria at 17.0 ± 6.5%. Planctomycetes that anammox bacteria are belonged to was 1.5% (± 0.3) on average from the two paddy soils. CONCLUSION: We suggest evidence of anammox bacteria in the paddy soil. In addition to the relatively well-known microbial processes for nitrogen-cycle, anammox can be a potential contributor on the cycle in terrestrial environments such as paddy soils.

Mainstream ANAMMOX 공정 적용시 암모니아성 질소 대비 아질산성 질소 비율 도출 연구 (Determination optimal ratio of ammonium to nitrite in application of the ANAMMOX process in the mainstream)

  • 이다원;이지원;길경익
    • 한국습지학회지
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    • 제23권1호
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    • pp.60-66
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    • 2021
  • 도시화와 산업화로 인해 하수처리장으로 유입되는 하수 내 질소 농도가 증가함에 따라 부영양화 발생, 수생태계에 독성을 미치는 등의 악영향의 정도 또한 증가하고 있다. 고농도의 질소가 포함된 하수를 처리하기 위해 생물학적 질소 제거 공정에 대한 연구가 다방면으로 진행되고 있다. 기존의 생물학적 질소 제거 공정에 있어 산소공급과 외부탄소원 보충에 따른 상당한 비용이 요구된다. 이러한 측면에서 경제적인 개선이 이루어진 고도의 질소 제거 공정이 요구됨에 따라 최근 기존의 질산화·탈질 공정 보다 효율적이고 경제적인 혐기성 암모늄 산화 공정(ANaerobic AMMonium OXidation, ANAMMOX)이 제안되었다. 본 연구에서는 수처리공정에서의 ANAMMOX 공정의 안정성을 확인하고, Mainstream ANAMMOX 공정구현을 위한 암모니아성 질소(NH4+) 대비 아질산성 질소(NO2-) 비율을 도출하는데 목적이 있다. 선행연구에서 제시된 기질비율을 바탕으로 산정한 비율을 적용해 실험실 규모의 Mainstream ANAMMOX 반응조를 운전하였다. Initial 구간에서 NH4+ 제거효율은 58~86%, 평균 제거효율은 70%였다. Advanced 구간에서 NH4+ 제거효율은 94~99%, 평균 제거효율은 95%였다. 연구 결과 NH4+/NO2- 비율이 증가함에 따라, Mainstream ANAMMOX 공정의 안정성이 확보되어 NH4+ 제거효율 및 총질소(TN) 제거효율이 증가하는 경향을 확인할 수 있었다. 결과적으로, 본 연구결과는 이후 수처리공정에서의 ANAMMOX 공정 적용과 공정 안정성 확보에 있어 기초자료로 활용될 수 있을 것으로 보인다.

주공정에서 아질산화-혐기성 암모늄 산화법에 의한 단축질소제거공정 연구동향 (Main-stream Partial Nitritation - Anammox (PN/A) Processes for Energy-efficient Short-cut Nitrogen Removal)

  • 박홍근;유대환
    • 한국물환경학회지
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    • 제34권1호
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    • pp.96-108
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    • 2018
  • Large efforts have recently been made on research and development of sustainable and energy-efficient short-cut nitrogen removal processes owing to strong attention to the energy neutral/positive wastewater treatment system. Anaerobic ammonium oxidizing bacteria (anammox bacteria) have been highlighted since 1990's due to their unique advantages including 60% less energy consumption, nearly 100% reduction for carbon source requirement, and 80% less sludge production. Side-stream short-cut nitrogen removal using anammox bacteria and partial nitritation anammox (PN/A) has been well established, whereas substantial challenges remain to be addressed mainly due to undesired main-stream conditions for anammox bacteria. These include low temperature, low concentrations of ammonia, nitrite, free ammonia, free nitrous acid or a combination of those. In addition, an anammox side-stream nitrogen management is insufficient to reduce overall energy consumption for energy-neutral or energy positive water resource recovery facility (WRRF) and at the same time to comply with nitrogen discharge regulation. This implies the development of the successful main-stream anammox based technology will accelerate a conversion of current wastewater treatment plants to sustainable water and energy recovery facility. This study discusses the status of the research, key mechanisms & interactions of the protagonists in the main-stream PN/A, and control parameters and major challenges in process development.

돈사폐수의 혐기성 질소제거공정에서 일어나는 특이반응 (Characteristic Reactions in Anaerobic Nitrogen Removal from Piggery Waste)

  • 황인수;민경석
    • 대한환경공학회지
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    • 제28권3호
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    • pp.300-307
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    • 2006
  • 혐기성 암모늄산화(ANAMMOX)는 고농도 질소폐수를 처리하기 위한 획기적인 공정이다. 본 연구에서는 고농도 암모늄 및 유기물을 함유한 고농도 폐수를 ANAMMOX 공정을 이용하여 처리하는 동안 일어나는 유기물질의 산발효, 탈질, 황화합물의 환원 및 hydroxyapatite에 의한 인의 결정화에 대하여 연구하였다. 또한, ANAMMOX 공정의 중간생성물인 hydroxylamine과 hydrazine의 기능을 조사하였다. 연구결과, 돈사폐수의 혐기성 암모니아산화 반응과 함께 다양한 복합반응이 일어나며, hydroxylamine과 hydrazine은 ANAMMOX 반응에 중요한 역할을 하는 것으로 나타났다.

공정 안정성에 대한 입상 및 고정화 혐기성 암모늄 산화균의 질소제거효율 비교 (Comparison of nitrogen removal efficiency on process stability for granular and immobilized anammox bacteria)

  • 최대희;배효관;정진영;김상현
    • 상하수도학회지
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    • 제28권2호
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    • pp.195-206
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    • 2014
  • Immobilization of anaerobic ammonium oxidizing bacteria has been studied to enhance the biomass retention of the slowly growing bacteria and the process stability. The purpose of this study was to compare the nitrogen removal efficiency of granular and immobilized anammox bacteria with poly vinyl alcohol and alginate. The specific anammox activity of the granular, homoginized and immobilized anammox bacteria were $0.016{\pm}0.0002gN/gVSS/d$, $0.011{\pm}0.001gN/gVSS/d$ and $0.007{\pm}0.0005gN/gVSS/d$, respectively. Although the activity decreased to 43.7 % of the original one due to low pH and $O_2$ exposure during the homogination and the immobilization, it was rapidly recovered within 7 days in the following continuous culture. When synthetic T-N concentrations of 100, 200, 400, 800 mg/L were fed, the immobilized anammox bacteria showed higher nitrogen removal efficiencies at all operational conditions than those of granular anammox bacteria. When the sludge retention time was shorten below 30.7 days and the reject water was fed, the nitrite removal efficiency of the granular anammox bacteria dropped to 8 % of the initial value, while that of the immobilized anammox bacteria was maintained over 95 % of the initial one. The immobilization with poly vinyl alcohol and alginate would be a feasible method to improve the performance and stability of the anammox process.

돈사폐수의 ANAMMOX 적용에 있어서 아질산성 질소 및 암모니아성 질소의 농도에 따른 영향 (Effects of various Nitrite and Ammonium Nitrogen Concentrationes in the Application of ANAMMOX of Piggery Waste)

  • 황인수;민경석
    • 한국물환경학회지
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    • 제22권3호
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    • pp.482-491
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    • 2006
  • The anaerobic ammonium oxidation (ANAMMOX) from substrates with various $NO_2-N$ and $NH_4-N$ concentationes, which were generated from piggery waste was accomplished by using anaerobic granular sludge as seeding sludge. As the result of operation, when $NO_2-N/NH_4-N$ ratios of ANAMMOX influent were 0.6~1.5, $NO_2-N/NH_4-N$ removal ratios were exhibited 1.19~2.07 (average 1.63). The higher influent $NO_2-N/NH_4-N$ ratios resulted in higher $NO_2-N/NH_4-N$ removal ratios by ANAMMOX. It means that $NO_2-N$ concentration is very important factor in ANAMMOX. Specific ammonium removal rate was constantly as $0.03{\sim}0.04gNH_4-N/g$ VSS-day at $35^{\circ}C$ while it was $0.01gNH_4-N/g$ VSS-day at $20{\sim}30^{\circ}C$. Thus, in order to reduce the effluent N concentration, either an increase of ANAMMOX reactor HRT or more biomass accumulation at the optimal temperature can be considered.

혐기성 암모늄 산화균의 활성에 대한 식종미생물, 히드라진 및 아질산성 질소 농도의 영향 (Effects of Seeding Microorganisms, Hydrazine, and Nitrite Concentration on the Anammox Activity)

  • 정진영;강신현;김영오;정윤철
    • 한국물환경학회지
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    • 제21권5호
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    • pp.477-483
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    • 2005
  • Anammox (Anaerobic Ammonium Oxidation) bacteria is recently discovered microorganism which can oxidize ammonium to nitrogen gas in the presence of nitrite under anaerobic conditions. The anammox process can save an energy for nitrification and need not require a carbon source for denitrification, however, the start-up periods takes a long time more than several months due to the long doubling time (approximately 11 days). In order to find the effects of seeding microorganisms, hydrazine, and nitrite concentration on the enhancement of the anammox activity, five kinds of microorganisms were selected. Among the several kinds of seeding microorganisms, the granule from acclimated microorganisms treating high concentration of ammonia nitrogen (A-1) and sludge from piggery wastewater treatment plant (A-2) were found to have a high anammox activity. In the case of A-1, the maximum nitrogen conversion rate represented 0.4 mg N/L-hr, and the amount of nitrite utilization was high compared to those of other seeding microorganisms. The A-4 represented a higher nitrogen conversion rate to 0.7 mg N/L-hr although the ammonium concentration in the serum bottle was high as 200 mg/L. Meanwhile, the anaerobic granule from UASB reactor treating distillery wastewater showed a low anammox activity due to the denitrification by the remained carbon sources in the granule. Hydrazine, intermediate product in anammox reaction, enhanced the anammox activity by representing 1.4 times of nitrogen gas was produced in the test bottle than that of control, when 0.4 mM of $N_2H_4$ was added to serum bottle which contains 5 mM of nitrite. The high concentration of nitrite (10 mM) resulted in the decrease of the anammox activity by showing lower production of nitrogen gas compared to that of 5 mM addition of nitrite concentration. As a result of FISH (Florescence In-Situ Hybridization) experiment, the Amx820 probe showed a more than 13% of anammox bacteria in a granule (A-1).

연속회분식 반응기를 이용한 혐기성 암모늄 산화균 농후배양에서의 정성 및 정량적 미생물 군집구조 분석 (Qualitative and Quantitative Analysis of Microbial Community Structure in the Sequencing Batch Reactor for Enriching ANAMMOX Consortium)

  • 배효관;정진영
    • 대한환경공학회지
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    • 제31권10호
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    • pp.919-926
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    • 2009
  • 혐기성 암모늄 산화공정을 안정화시키기 전에 많은 양의 식종 미생물 투여가 필요하므로 혐기성 암모늄 산화균의 농후배양은 실규모의 혐기성 암모늄 산화 반응기를 운영할 때 필수적인 과정이다. 본 연구에서는 활성슬러지 미생물을 식종한 연속 회분식 반응기를 이용하여 혐기성 암모늄 산화균을 농후배양하고, 미생물 군집구조의 변화를 관찰하여 농후배양 결과를 검증하였다. 혐기성 암모늄 산화균의 농후배양은 70일간 시행되었고, 농후배양 후 활성시험에서 $NH_4\;^+$$NO_2\;^-$의 기질제거효율이 각각 98.5%와 90.7%로 관찰되어 혐기성 암모늄 산화균의 배양이 성공적으로 수행된 것으로 판단되었다. 계통분류학적 분지도 작성 결과, 다양하였던 Planctomycetes 문(phylum)의 미생물 군집구조가 농후배양 이후에 현저하게 단순해졌다는 것이 밝혀졌다. 농후배양 이후 발견된 36개의 clone들 모두가 혐기성 암모늄 산화균이었으며, Candidatus Brocadia (36%) 와 Candidatus Anammoxoglobus (64%) 속(genus)에 속하였다. RTQ-PCR (real-time quantitative PCR)을 통해 혐기성 암모늄 산화균을 정량한 결과, 혐기성 암모늄 산화 상향류식 연속 배양기에서 1년 이상 선택 배양된 붉은색 혐기성암모늄 산화 입상 슬러지에 비해 혐기성 암모늄 산화균의 16S rDNA 농도가 74.8%인 것으로 나타났다. 상기의 분자생물학적 분석을 통해 70일간 농후배양된 활성슬러지가 혐기성 암모늄 산화 실용화 공정의 접종 미생물로 활용 가능할 것으로 판단되었다.