• 제목/요약/키워드: phenol biodegradation

검색결과 63건 처리시간 0.019초

Formulation of a novel bacterial consortium for the effective biodegradation of phenol

  • Dhanya, V.
    • Advances in environmental research
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    • 제9권2호
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    • pp.109-121
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    • 2020
  • Phenol is frequently present as the hazardous pollutant in petrochemical and pesticide industry wastewater. Because of its high toxicity and carcinogenic potential, a proper treatment is needed to reduce the hazards of phenol carrying effluent before being discharged into the environment. Phenol biodegradation with microbial consortium offers a very promising approach now a day's. This study focused on the formulation of phenol degrading bacterial consortium with three bacterial isolates. The bacterial strains Bacillus cereus strain VCRC B540, Bacillus cereus strain BRL02-43 and Oxalobacteraceae strain CC11D were isolated from detergent contaminated soil by soil enrichment technique and was identified by 16s rDNA sequence analysis. Individual cultures were degrade 100 μl phenol in 72 hrs. The formulated bacterial consortium was very effective in degrading 250 μl of phenol at a pH 7 with in 48 hrs. The study further focused on the analysis of the products of biodegradation with Fourier Transform Infrared Spectroscopy (FT/IR) and Gas Chromatography-Mass Spectroscopy (GC-MS). The analysis showed the complete degradation of phenol and the production of Benzene di-carboxylic acid mono (2-ethylhexyl) ester and Ethane 1,2- Diethoxy- as metabolic intermediates. Biodegradation with the aid of microorganisms is a potential approach in terms of cost-effectiveness and elimination of secondary pollutions. The present study established the efficiency of bacterial consortium to degrade phenol. Optimization of biodegradation conditions and construction of a bioreactor can be further exploited for large scale industrial applications.

Burkholderia cepacia G4에 의한 트리클로로에틸렌의 공동대사적 분해에 미치는 성장기질의 영향 (Effects of Growth Substrates on Cometabolic Biodegradation of Trichloroethylene by Burkholderia cepacia G4)

  • 예병대;박성훈;이은열
    • KSBB Journal
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    • 제15권5호
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    • pp.474-481
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    • 2000
  • The effects of growth substrates such as toluene and phenol on cometabolic biodegradation of trichloroethylene (TCE) by Burkholderia cepacia G4 were investigated. The dual effects of primary substrate on TCE biodegradation, stimulatory effects of toluene and phenol at low concentrations (0.5∼2 ppm & 0.1∼0.5 ppm, respectively) and a competitive inhibition at high concentration, were observed in batch experiments. These stimulatory effects of toluene and phenol were found to be due to the increments in the amount of reducing power like NADH which could be generated during the assimilation of toluene and phenol as the carbon and energy source. The efficiency of TCE biodegradation in trickling biofilm reactor (TBR) could be also enhanced up to the TCE removal efficiency of 58.1% by the supply of appropriate amounts of phenol (0.94∼4.7 ppm).

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반응표면 분석법을 이용한 트리클로로에틸렌의 공대사적 분해조건 최적화 (Optimization of Cometabolic Trichloroethylene Degradation Conditions by Response Surface Analysis)

  • 윤성준
    • KSBB Journal
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    • 제15권4호
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    • pp.393-397
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    • 2000
  • The cometaboic biodegradation conditionso f trichloroethylene(TCE) by Burkholderia cepacia G4 were optimized using response surface analysis. The experimental sets of phenol concentration temperature and pH were designed using central composite experimental design. The optimal conditions of phenol concentration temperature and pH were determined to be 0.91 ppm 21.5$^{\circ}C$ and 7.65 respectively by the Ridge analysis of the contour plot for TCE biodegradation rates. The TCE biodegradation rate could be enhanced up to 2.43 nmol.mg protein$.$min by response surface methodology.

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반연속배양의 혼합균주에 의한 Benzene, Toluene 및 Phenol 혼합물 분해 (Biodegradation of Benzne,Toluene, and Phenol by a Mixed Culture in Semicontinuous Culture)

  • 오희목;김성빈;이창호;서현효;이문호;고영희;윤병대
    • 한국미생물·생명공학회지
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    • 제22권4호
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    • pp.415-422
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    • 1994
  • The biodegradation of aromatic compounds by a mixed culture GE1 was investigated in an artificial wastewater containing 250 mg/l of benzene, toluene, and phenol in semicontinuous culture. In the control group (no strains) with an aeration rate of 75 ml/l/min, 37% of phenol and 83% of benzene were volatilized during early 24 hrs and toluene was disappeared from the medium within 12 hrs. The biodegradation of benzene and toluene was effective in SB (strains + biofilm) treatment, while phenol was degraded more quickly in SG (strains + glucose) treatment including glucose as an additional carbon source. aromatic compounds added at a concentration of 250 mg/l were completely removed by SG treatment after 16 hrs or 32 hrs, respectively. The removal rate of COD was high as much as 80 mg/l/h in SG treatment during early period, but COD revealed a stable value of 116~140 mg/l after 12 hrs caused by increased biomass. Therefore, it is concluded that the mixed GE1 could be used for the wastewater treatment including aromatic compounds such as benzene, toluene, and phenol.

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Micrococcus sp. M1에 의한 Phenol과 p-Creso의 생분해 Kinetics (Biodegradation Kinetics of Phenol and pcresol by Micrococcus sp. M1)

  • 손홍주;장웅석;이건;이상준
    • 한국환경과학회지
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    • 제6권2호
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    • pp.153-163
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    • 1997
  • In order to fad the most fitted biodegradation model, biodegradation kinetics model to the initial phenol and p-cresot concentrations were investigated and had been fitted by the linear regression. Bacteria capable of degrading p-cresol were isolated from soil by enrichment culture technique. Among them, strain Ml capable of degradillg p.rcresol has also degraded phenal and was identified as the genus Micrococcus from the results from of taxonomical studies. The optimal tonditlons for the biodegradation of phenal and p-cresol by Micrococcus sp. Ml were $NH_4NO_3$ 0.05%, pH 7.0, 3$0^{\circ}C$, respectively, and medium volume 100m1/250m1 shaking flask. iwicrococcus sp. Ml was able to grow on phenal concentration up to 14mM and p-cresol concelltration up to 0.8mM. With increasing substrate concentraction, the lag period increased, but the maximum specific growth rates decreased. The yield coefficient decreased with increasing substrate concentation. The biodegradation kinetics of phenol and p-cresol were best described by Monod with growth model for every experimented concentration. In cultivation of mixed substrate, p-cresol was degraded first and phenol was second. This result implies that p-cresol and phenol was not degraded simultaneously.

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활성슬러지공정에서 페놀이 2,4-디클로로페놀과 2,4-디니트로페놀을 함유한 복합페놀폐수의 미생물분해계수에 미치는 영향 (The Effects of Phenol on Biokinetic Coefficient of Multiple Phenol Derivatives of 2,4-Dichlorophenol and 2,4-Dinitrophenol in Activated Sludge Process)

  • 임계규
    • 공업화학
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    • 제10권3호
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    • pp.349-353
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    • 1999
  • 페놀성 산업폐수중 2,4-dichlorophenol과 2,4-dinitrophenol를 함유한 폐수에 대해서 phenol이 활성슬러지공법에서 이 두 물질의 미생물 분해와 활성슬러지공정에 대한 Eckenfelder 수정모델의 미생물분해계수 (biodegradation kinetic coefficient)에 미치는 영향을 연구실험하였다. 미생물 성장에 필요한 에너지원과 필수영양물질 (base mix. BM)을 함유한 폐수를 분해하고 있는 활성슬러지 시스템에 2,4-dichlorophenol과 2,4-dinitrophenol를 함유한 폐수를 유입시켰을 때 이 활성슬러지 시스템은 서서히 죽어갔고 미생물들이 다 씻겨 나갔다. 반면에 페놀에 먼저 순화되어 있는 활성슬러지 시스템에 2,4-dichlorophenol과 2,4-dichlrophenol을 함유한 폐수를 phenol과 함께 유입하였을 때는 분해가 잘 되었고, 분해효율은 $BOD_5$ 기준으로 91.9%에 달했다. 그리고 phenol, 2,4-dichlorophenol 및 2,4-dinitrophenol의 처리효율은 각각 99.8%, 43.3% 및 62.5%였다. 같은 반응조에 연이어서 유입한 에너지원과 필수 영양물질의 추가공급은 처리효율을 상당히 증가시켜 처리수 중의 phenol, 2,4-dichlorophenol 및 2,4-dinitrophenol 농도를 현저히 감소시켰다. 이러한 효과는 페놀에 의해 순화되어 있는 미생물이 BM의 추가공급으로 활성도가 증가되어 분해효율이 증가되었다고 본다. 페놀에 대한 미생물의 순화과정 없이 실험하였을 때는 정상상태를 유지할 수 없었기 때문에 그 결과로부터는 Eckenfelder 수정모델의 미생물분해계수의 값을 구할 수가 없없다. 순화과정을 거친 경우의 미생물분해계수는 12.44/day이었고, 추가적인 $BM\;47mg/l(BOD_5)$의 첨가에 의해서는 46.91/day로 증가되었다. 이러한 값들은 공정설계시에 설계값으로 사용될 수 있고 다른 벤젠유도체의 미생물분해연구에 기초자료로도 활용 될 수 있을 것이다.

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페놀 화학사고 발생으로 오염된 퇴적물에서 페놀의 거동 기작이 원위치 피복의 정화 효율에 미치는 영향 (Effect of the Fate Mechanisms of Phenol on the Remediation Efficiency of In-Situ Capping Applied to Sediment Contaminated by Phenol Chemical Spills)

  • 이아름;최용주
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제27권1호
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    • pp.60-70
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    • 2022
  • We evaluated the performance of in-situ capping to prevent the release of phenol, one of hazardous chemicals of concern for their impact on sediment. Sediment near the estuary of Hyeongsan River, Korea, and commercially-available sand were collected to evaluate their physical properties and phenol sorption characteristics. Biodegradation kinetics of phenol spiked into the sediment was evaluated under freshwater and estuarine salinity conditions. These experimental measurements were parameterized and used as input parameters for executing CapSim, a software predicting the performance of in-situ capping. The CapSim simulation demonstrated that capping with 50-cm sand reduced the phenol release by several orders of magnitude over 0.25- and 1-year duration for almost all simulation scenarios. The variables tested, i.e., cap thickness, pore-water movement, and biodegradation rate, showed high correlation to each other to influence the extent of phenol release from sediment to the water column. The findings and the framework employed to evaluate the performance of in-situ capping in this study can be adopted to determine whether in-situ capping is appropriate remedial approach at sediment sites impacted by hazardous chemicals due to accidental spills.

Biodegradation of Trichloroethylene by Phenol-degrading Pseudomonas putida

  • Shin, Hyun-Jae;Lee, Moo-Yeal;Yang, Ji-Won
    • Journal of Microbiology and Biotechnology
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    • 제8권2호
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    • pp.185-187
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    • 1998
  • Pseudomonas putida KCTC 2401 degrades 1,1, 2-trichloroethylene (TCE) using phenol as a cosubstrate. The initial TCE degradation rate decreased with the initial TCE concentration up to 20mg/l of TCE at $30^{\circ}C$ and pH 6.5. The initial degradation rate and total removal efficiency increased with inoculum size. The strain also degraded dichloroacetic acid, which was supposed to be a degradation by-product. Phenol monooxygenase apparently participates in the TCE degradation mechanism.

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단일배양 및 혼합배양에 의한 Benzene, Phenol 및 Toluene 혼합물의 생분해 (The Biodegradation of Mixtures of Benzene,Phenol,and Toluene by Mixed and Monoculture of Bacteria)

  • 이창호;오희목;권태종;권기석;김성빈;고영희;윤병대
    • 한국미생물·생명공학회지
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    • 제22권6호
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    • pp.685-691
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    • 1994
  • The biodegradation of aromatic compounds by mixed and monoculture was investigated in an artificial wastewater containing 500 mg/l of benzene(B), phenol(P), and toluene(T) in various combinations. None of three strains utilized P-xylene(X) as a carbon source, but they grew well on p-xylene in mixtures with benzene and toluene. In the mixed culture on mixed substrate, the length of lag phase was different depending on the nature of mixture. Cell growths of Flavobac- terium sp. BEN2 and Acinetobacter sp. GEM63 were inhibited in the presence of a 500 mg/l of phenol. When the mixed culture of three strains was cultured in a bench-scale reactor containing artificial wastewater, each of benzene, phenol, and toluene was not detected at 30 hrs, 50 hrs, and 12 hrs after incubation in the treatment. The removal rates of COD$_{t}$(total COD) and COD$_{s}$,(soluble COD) of upper phase after centrifugation during early 50 hrs were ca. 80% and ca. 93.8%, respectively.

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