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동의어 포함
| 번호 | 참고문헌 | 국회도서관 소장유무 |
|---|---|---|
| 1 | Dechlorination of Atrazine in Sediment Using Zero Valent Iron | 소장 |
| 2 | Optimal Remediation of TCE-contaminated Groundwater using Direct Current and Fe0 | 소장 |
| 3 | Reductive Degradation of 4-Chlorophenol Compound by Nickel-Coated Zero Valent Iron | 소장 |
| 4 | As (v) immobilization in an aqueous solution by zerovalent iron under various environmental conditions | 소장 |
| 5 | Pathways and Kinetics of Chlorinated Ethylene and Chlorinated Acetylene Reaction with Fe(0) Particles ![]() |
미소장 |
| 6 | Immobilization of Chromate from Coal Fly Ash Leachate Using an Attenuating Barrier Containing Zero-valent Iron ![]() |
미소장 |
| 7 | Baciocchi, E., 1983, The Chemistry of Functional Groups. In: Patai, S. and Rappoport, Z. (eds.), 1,2- Dehalogenations and Related Reactions, Supplement D. John Wiley and Sons Ltd., New York, 161-201. | 미소장 |
| 8 | Tracking Hexavalent Cr in Groundwater ![]() |
미소장 |
| 9 | In-Situ Remediation of Cr(VI)-Contaminated Groundwater Using Permeable Reactive Walls: Laboratory Studies ![]() |
미소장 |
| 10 | Christians, G.L., Ash, R.E. and Wilson, D.J., 2006, PRB wall design optimization Monte Carlo probabilistic approach saves $1,500,000. Fifth International Conference on Remediation of Chlorinated and Recalcitrant Compounds, Monterey, CA, USA, May 22-25. | 미소장 |
| 11 | Dayan, H., Abrajano, T., Sturchio, N.C. and Winsor, L., 1999, Carbon isotopic fractionation during reductive dehalogenation of chlorinated ethenes by metallic iron. Organic Geochemistry, 30, 755-763. | 미소장 |
| 12 | Deng, B., Burris, D.R. and Campbell, T.J., 1999, Reduction of vinyl chloride in metallic iron-water systems. Environmental Science and Technology, 33, 2651- 2656. | 미소장 |
| 13 | Devlin, J.F. and Allin K,O., 2005, Major anion effects on the kinetics and reactivity of granular iron in glass-encased magnet batch reactor experiments. Environmental Science and Technology, 39, 1868- 1874. | 미소장 |
| 14 | Elmore, C., Summers, D., Vogan, J. and Duchene, M., 2003, A novel waterjetting method for PRB emplacement in bedrock environments. RTDF Permeable Reactive Barriers (PRBs) Action Team Meeting, Niagara Falls, NY, USA, October 15-16. | 미소장 |
| 15 | Fiorenza, S., Oubra, C.L. and Ward, C.H. (Eds.), 2000, Sequenced Reactive Barriers fo r Groundwater Remediation, Lewis Publishers, Boca Raton, FL, USA, 730 p. | 미소장 |
| 16 | Gavaskar, A.R., Gupta, N., Sass, B.M., Janosy, R.J. and O’Sullivan, D., 1998, Permeable Barriers for Groundwater Remediation: Design, Construction, and Monitoring. Battelle Press, Columbus, OH, USA, 176 p. | 미소장 |
| 17 | Enhanced Degradation of Halogenated Aliphatics by Zero‐Valent Iron ![]() |
미소장 |
| 18 | Gu, B., Liang, L., Zhou, J. and Phillips, D., 2001. In-situ microbial investigation of a Fe(0) reactive barrier. American Chemical Society National Meeting, San Diego, CA, USA, April 1-5, 41(1), 1173-1180. | 미소장 |
| 19 | Effects of carbonate precipitates on long-term performance of granular iron for reductive dechlorination of TCE. ![]() |
미소장 |
| 20 | Precipitates on Granular Iron in Solutions Containing Calcium Carbonate with Trichloroethene and Hexavalent Chromium ![]() |
미소장 |
| 21 | Jeen, S.-W., Mayer, K.U., Gillham, R.W. and Blowes, D.W., 2007b, Reactive transport modeling of tri-chloroethene treatment with declining reactivity of iron. Environmental Science and Technology, 41, 1432- 1438. | 미소장 |
| 22 | Performance evaluation of granular iron for removing hexavalent chromium under different geochemical conditions ![]() |
미소장 |
| 23 | Kinetics of Halogenated Organic Compound Degradation by Iron Metal ![]() |
미소장 |
| 24 | Modeling porosity reductions caused by mineral fouling in continuous-wall permeable reactive barriers ![]() |
미소장 |
| 25 | Reductive Dechlorination of Trichloroethene and Carbon Tetrachloride Using Iron and Palladized-Iron Cathodes ![]() |
미소장 |
| 26 | Distinguishing Abiotic and Biotic Transformation of Tetrachloroethylene and Trichloroethylene by Stable Carbon Isotope Fractionation ![]() |
미소장 |
| 27 | Dechlorination of trichloroethylene in aqueous solution by noble metal-modified iron ![]() |
미소장 |
| 28 | Effect of particle age (Fe0 content) and solution pH on NZVI reactivity: H2 evolution and TCE dechlorination. ![]() |
미소장 |
| 29 | Lu, Q., 2005, Effect of Oxidant (Nitrate) on TCE Degradation by Granular Iron. M.Sc. Thesis, University of Waterloo, Waterloo, Ontario, Canada, 57p. | 미소장 |
| 30 | Mineral precipitation and porosity losses in granular iron columns ![]() |
미소장 |
| 31 | Matheson, L.J. and Tratnyek, P.G., 1994, Reductive dehalogenation of chlorinated methanes by iron metal. Environmental Science and Technology, 28, 2045- 2053. | 미소장 |
| 32 | Reactive transport modeling of an in situ reactive barrier for the treatment of hexavalent chromium and trichloroethylene in groundwater (Paper 2001WR000234) ![]() |
미소장 |
| 33 | Mechanism of oxide film formation on iron in simulating groundwater solutions: Raman spectroscopic studies ![]() |
미소장 |
| 34 | Long‐Term Performance of an In Situ “Iron Wall” for Remediation of VOCs ![]() |
미소장 |
| 35 | The impact of permanganate on the ability of granular iron to degrade trichloroethene ![]() |
미소장 |
| 36 | Performance Evaluation of a Zerovalent Iron Reactive Barrier: Mineralogical Characteristics ![]() |
미소장 |
| 37 | Experimentally determined uranium isotope fractionation during reduction of hexavalent U by bacteria and zero valent iron. ![]() |
미소장 |
| 38 | Anaerobic corrosion of granular iron: measurement and interpretation of hydrogen evolution rates. ![]() |
미소장 |
| 39 | Zerovalent irons: styles of corrosion and inorganic control on hydrogen pressure buildup. ![]() |
미소장 |
| 40 | Sampling bias caused by materials used to monitor halocarbons in groundwater ![]() |
미소장 |
| 41 | An in situ study of the effect of nitrate on the reduction of trichloroethylene by granular iron ![]() |
미소장 |
| 42 | Chemistry and Microbiology of Permeable Reactive Barriers for In Situ Groundwater Clean up ![]() |
미소장 |
| 43 | Stable hydrogen, carbon and chlorine isotope measurements of selected chlorinated organic solvents ![]() |
미소장 |
| 44 | Siegrist, R.L., Urynowicz, M.A., West, O.R., Crimi, M.L. and Lowe, K.S., 2001, Principles and Practices of In Situ Chemical Oxidation Using Permanganate. Battelle Press, Columbus, OH, USA, 348 p. | 미소장 |
| 45 | Slater, G.F., Sherwoood Lollar, B., Allen KIng, R. and O'Hannesin, S., 2002, Isotopic fractionation during reductive dechlorination of trichloroethene by zero-valent iron: influence of surface treatment. Chemosphere, 49, 587-596. | 미소장 |
| 46 | Kinetics of Trichloroethene Reduction by Zerovalent Iron and Tin: Pretreatment Effect, Apparent Activation Energy, and Intermediate Products ![]() |
미소장 |
| 47 | Sweeney, K.H. and Fischer, J.R., 1972, Reductive Degradation of Halogenated Pesticides. U.S.A. patent 3: 640, 821. | 미소장 |
| 48 | Tratnyek, P.G., Scherer, M.M., Johnson, T.L. and Matheson, L.J., 2003, Permeable reactive barriers of iron and other zero-valent metals. Environmental Science and Pollution Control Series, 26 (Chemical Degradation Methods for Wastes and Pollutants), 371-421. | 미소장 |
| 49 | U.S. EPA, 1998, Permeable Reactive Barrier Technologies for Contaminant Remediation. U.S. Environmental Protection Agency, EPA/600/R-98/125, Washington, DC, USA, 94 p. | 미소장 |
| 50 | U.S. EPA, 1999a, An In Situ Permeable Reactive Barrier for the Treatment of Hexavalent Chromium and Trichloroethylene in Ground Water: Volume 1, Design and Installation. U.S. Environmental Protection Agency, EPA/600/R-99/095a, Washington, DC, USA, 111 p. | 미소장 |
| 51 | U.S. EPA, 1999b, An In Situ Permeable Reactive Barrier for the Treatment of Hexavalent Chromium and Trichloroethylene in Ground Water: Volume 2, Performance Monitoring. U.S. Environmental Protection Agency, EPA/600/R-99/095b, Washington, DC, USA, 207 p. | 미소장 |
| 52 | U.S. EPA, 2002, Field Applications of In Situ Remediation Technologies: Permeable Reactive Barrier. U.S. Environmental Protection Agency, Washington, DC, USA, 30 p. | 미소장 |
| 53 | Effect of Iron Type on Kinetics and Carbon Isotopic Enrichment of Chlorinated Ethylenes During Abiotic Reduction on Fe(0) ![]() |
미소장 |
| 54 | Monitoring trichloroethene remediation at an iron permeable reactive barrier using stable carbon isotopic analysis ![]() |
미소장 |
| 55 | Vidmusky, J.E., 2003, Impacts of a zero-valent iron permeable reactive barrier on dowgradient biodegradation processes. RTDF Permeable Reactive Barrier Action Team Meeting, Niagara Falls, NY, USA, October 15-16. | 미소장 |
| 56 | Performance evaluation of a permeable reactive barrier for remediation of dissolved chlorinated solvents in groundwater ![]() |
미소장 |
| 57 | Ground Water Age ![]() |
미소장 |
| 58 | The first commercial permeable reactive barrier composed of granular iron: hydraulic and chemical performance at 10 years of operation ![]() |
미소장 |
| 59 | Long‐Term Performance of Permeable Reactive Barriers Using Zero‐Valent Iron: Geochemical and Microbiological Effects ![]() |
미소장 |
| 60 | Chromium-removal processes during groundwater remediation by a zerovalent iron permeable reactive barrier. ![]() |
미소장 |
| 61 | Multicomponent reactive transport in an in situ zero-valent iron cell. ![]() |
미소장 |
| 62 | Yang, Y., 2006, Reduction of TCE and Chromate by Granular Iron in the Presence of Dissolved CaCO3. M.S. Thesis, University of Waterloo, Waterloo, Ontario, Canada, 95 p. | 미소장 |
| 63 | Effects of Gas Generation and Precipitates on Performance of Fe° PRBs ![]() |
미소장 |
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