• Title/Summary/Keyword: Trichloroethylene (TCE)

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Cometabolism of Trichloroethylene by a Phenol-Degrading Bacterium, Pseudomonae sp. EL-04J (페놀분해세균인 Pseudomonas sp. EL-04J에 의한 Trichloroethylene의 공동대사)

  • Kim, Ho-Seong;Park, Geun-Tae;Son, Hong-Ju;Park, Seong-Hun;Lee, Sang-Jun
    • Journal of Environmental Science International
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    • v.10 no.5
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    • pp.359-364
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    • 2001
  • Pseudomanas sp. EL-04J was previously isolated from phenol-acclimated activated sludge. This bacterium was capable of degrading phenol and cometabolizing trichloroethylene (TCE). After precultivation in the mineral salts medium containing phenol as a sole carbon source, Pseudomonas EL-04J degraded 90% of TCE $25 \mu\textrm{M}$ within 20 hours. Thus, phenol-induced Pseudomonas sp. EL-04J cells can bdegrade TCE. Followsing a transient lag period, Pseudomonas sp. EL-04J cells degraded TCE at concentrations of at least $250 \mu\textrm{M}$ with no apparent retardation in rate, but the transformance capacity of such cells was limited and depended on the cell concentration. The degradation rate of TCE followed the Michaelis-Menten kinetic model. The maximum degradation ratio ($V_{max}$) and saturation constant ($K_{m}$) were $7nmo {\ell}/min{\cdot}mg$ cell protein and $11 \mu\textrm{M}$, respectively. Cometabolism of TCE by phenol fed experiment was evaluated in $50m {\ell}$ serum vial that contained $10m {\ell}$ of meneral sals medium supplemented with $10 \mu\textrm{M}$ TCE degradation was inhibited in the initial period of 1 mM phenol addition, but after that time Pseudomonas sp. EL-04J cells degraded TCE and showed cell growth.

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Evaluation of Biocatalyst and Bioreactor System for the Continuous Treatment of Trichloroethylene (미생물 생촉매를 이용한 Trichloroethylene 연속처리용 생물반응기 시스템 평가)

  • 이은열
    • Journal of Life Science
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    • v.13 no.6
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    • pp.970-975
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    • 2003
  • Microbial trichloroethylene (TCE) degradation using trickling biofilter (TBF) is a cost-effective treatment method, in which monooxygenase (MO) fortuitously transforms TCE via cometabolism. Simple TBF, however, could not be stably operated for long-term treatment of TCE due to the contradictory characteristics of cometabolism. In this paper, microbial biocatalyst and biofilm reactor system, a two-stage continuous stirred tank reactor (CSTR)/TBF system using Burkholderia cepacia G4 and Methylosinus trichosporium OB3b, are evaluated for the long-term continuous treatment of TCE. The maximum TCE elimination capacities were in the range of 28 and 525 mg TCE/1$.$day. The reactor systems were stably operated for more than 3∼12 months.

A Study on the Photocatalytic Oxidation of Trichloroethylene in Air (이산화티타늄($TiO_2$) 광촉매 산화 반응에 이용한 트리클로로에틸렌(TCE) 처리에 관한 연구)

  • 정창훈;서정민;김석택;최금찬
    • Journal of Korean Society for Atmospheric Environment
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    • v.16 no.5
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    • pp.521-528
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    • 2000
  • Photocatalyzed degradation of trace level trichloroethylene(TCE) and toluene in air was carried out over near UV illuminated titanium doxide(anatase) pellet in a flow reactor. The authors investigaed the effects of humidity and trace contaminant levels on the oxidation rates of toluene. Inlet concentrations of TCE and toluene were 10∼100ppm. TCE photooxidation was very rapid under what conditions, and almost 100% conversion was achieved for TCE(up to 70 ppm) as a single air contaminant. An important finding was that competitive adsorption between humidity and trace contaminants has a significant effect on the oxidation rate of what.

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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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    • v.8 no.2
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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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Recovery of Trichloroethylene Removal Efficiency through Short-term Toluene Feeding in a Biofilter Enriched with Pseudomonas putida F1

  • Jung In-Gyung;Park Ok-Hyun;Woo Hae-Jin;Park Chang-Ho
    • Biotechnology and Bioprocess Engineering:BBE
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    • v.10 no.1
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    • pp.34-39
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    • 2005
  • Trichloroethylene (TCE) is an environmental contaminant provoking genetic mutation and damages to liver and central nerve system even at low concentrations. A practical scheme is reported using toluene as a primary substrate to revitalize the biofilter column for an extended period of TCE degradation. The rate of trichloroethylene (TCE) degradation by Pseudomonas putida F1 at $25^{\circ}C$ decreased exponentially with time, without toluene feeding to a biofilter column ($11\;cm\;I.D.{\times}95\;cm$ height). The rate of decrease was 2.5 times faster at a TCE concentration of $970\;{\mu}g/L$ compared to a TCE concentration of $110\;{\mu}g/L$. The TCE itself was not toxic to the cells, but the metabolic intermediates of the TCE degradation were apparently responsible for the decrease in the TCE degradation rate. A short-term (2 h) supply of toluene ($2,200\;{\mu}g/L$) at an empty bed residence time (EBRT) of 6.4 min recovered the relative column activity by $43\%$ when the TCE removal efficiency at the time of toluene feeding was $58\%$. The recovery of the TCE removal efficiency increased at higher incoming toluene concentrations and longer toluene supply durations according to the Monod type of kinetic expressions. A longer duration ($1.4{\sim}2.4$ times) of toluene supply increased the recovery of the TCE removal efficiency by $20\%$ for the same toluene load.

Isotope Selectivity in the CO$_2$Laser Induced Decomposition of Trichloroethylene-H and Trichloroethylene-D

  • Koo Sang Man;Chun Byung Soo;Choo Kwang Yul
    • Bulletin of the Korean Chemical Society
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    • v.10 no.1
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    • pp.96-101
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    • 1989
  • The infrared multiphoton decomposition of trichloroethylene-H(TCE-H) and trichloroehtylene-D(TCE-D) was studied by using the high power $CO_2$ laser. The pressure dependence of TCE-H decomposition showed that the HCl elimination channel to form ClC ≡ CCl was the major step at high pressures, while the HC ≡ CCl formation step became important at low pressures. $Cl_2C$ = CHCl ${\rightarrow}$ (high pressure) ClC ${\equiv}$ CCl + HCl ${\rightarrow}$ (low pressure) HC ${\equiv}$ CCl + 2Cl${\cdot}$($Cl_2$) The IRMPD of TCE-H and TCE-D mixtures with 10P(20) laser line showed that optimum conditions of large isotope selectivity were the low system pressures and high laser powers. The experimentally observed dependence of the branching ratios on the pressure and laser fluence, and the isotope selectivity coefficients were quantitatively explained by using the modified energy grained master equations (EGME) model.

Trichloroethylene (TCE) Removal Capacity of Synthesized Calcium Sulfoaluminate Minerals in Hydrated Cement-based Materials (합성 Calcium Sulfoaluminate계 시멘트 수화물의 Trichloroethylene (TCE) 제거능)

  • Ha, Min-Gyu;Ghorpade, Praveen A.;Kim, Jeong-Joo;Park, Joo-Yang
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.33 no.4
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    • pp.1463-1469
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    • 2013
  • Portland cement used as binding material in combination of ferrous iron for reductive dechlorination of chlorinated organics is already widely studied topic by several researchers. However there is no clear evidence about the component solely responsible in cement for trichloroethylene (TCE) dechlorination. Many researchers suspect that the ettringite, monosulfate phases associated with hydration of cement are responsible active agents for TCE dechlorination. This study deals with synthesizing different pure crystalline minerals like ettringite and monosulfate phases of cement hydration and check individual phase's TCE dechlorinating capacity in combination with ferrous iron. The results indicated that the synthesized minerals showed no reduction capacity for TCE. The findings in the present study is significant as it shows that ettringite and monosulfate phases which were suspected minerals by previous researchers for TCE dechlorination are not reactive. Hence it is suspected that some other mineral or mineral form in cement phase could be responsible for TCE degradation.

Research on Remediation of Trichloroethylene using Zero Valent Iron Bipolar Packed Bed Electrodes (영가철 충진 복극전해조를 이용한 TCE 정화기법에 관한 연구)

  • Park, Yu-Ri;Shin, Ja-Won;Park, Joo-Yang
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.32 no.1B
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    • pp.85-91
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    • 2012
  • Permeable Reactive Barriers (PRBs) using zero valent iron (ZVI, $Fe^0$) is a promising technology for in-situ remediation of trichloroethylene (TCE) forming dense non aqueous phase liquid (DNAPL). The objective of this study is to develop an enhanced treatment method of trichloroethylene-contaminated groundwater using ZVI packed bed with direct current (D.C.). A column experiment was performed to investigate degradation efficiency of TCE that was performed in three different combination of control (only sand), ZVI column (ZVI:sand, packing ratio 1:2(v/v)) and bipolar column (ZVI:sand=1:2(v/v) with electric current) in the test columns. As the results of this study, the degradation efficiency of TCE was improved with simultaneous application of both bipolar column compared to that used ZVI column. Because ZVI particles are isolated and individual particles act like small electrodes. In this experiment, it was indicated a basic material for application of bipolar packed bed as electro-PRBs that was effective degradation of TCE.

Development of Trickling Bioreactor(TBR) for Trichloroethylene biodegradation by Pseudomonas cepacia G4

  • Lee, Eun-Yeol;Ye, Byeong-Dae;Park, Seong-Hun
    • 한국생물공학회:학술대회논문집
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    • 2000.04a
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    • pp.410-413
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    • 2000
  • Lab-scale trickling bioreactor(TBR) containing the biofilm of Pseudomonas cepacia G4 was developed for the treatment of trichloroethylene(TCE) in a waste gas stream. The effect of phenol feeding on the efficiency of TCE biodegadation in TBR was investigated with the change of inlet phenol concentration from 0 to 4.71 ppm. When 0.94 ppm of phenol was supplied, the best performance of TBR was maintained with the TCE removal efficiency of 58.1%. These results showed that the appropriate supply of phenol could stimulate TCE removal efficiency in TBR.

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Confirmation of Trichloroethylene-Degrading Enzyme from a Phenol-Degrading Bacterium, Pseudomonas sp. EL-04J (페놀분해세균인 Pseudomonas sp. EL-04J로부터 Trichloroethylene 분해효소의 확인)

  • Park, Geun-Tae;Kim, Ho-Sung;Son, Hong-Ju;Lee, Gun;Park, Sung-Hoon;Lee, Sang-Jun
    • Journal of Life Science
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    • v.12 no.5
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    • pp.561-565
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    • 2002
  • Pseudomonas sp. EL-041 was previously isolated from phenol-acclimated activated sludge. This bacterium was capable of degrading phenol and cometabolizing trichloroethylene (TCE). In this study, we report the identification of trichloroethylene- degrading enzyme in Pseudomonas sp. EL-041 by the investigation of enzyme activity and DNA sequencing of specific phenol oxygenase gene. As the results of experiment, trichloroethylene-degrading enzyme in Pseudomonas sp. EL-041 was monooxygenase and suspected to phenol hydroxylase.