The oxidation of Fe(II) is apparently the rate-limiting step in passive treatment of coal mine drainage. Little work has been done to determine the kinetics of oxidation in such field systems, and no models of passive treatment systems explicitly consider iron oxidation kinetics. A Stella II model using Fe(II)(init) concentration, pH, temperature, Thiobacillus ferrooxidans and O-2 concentration, flow rate, and pond volume is used to predict Fe(II) oxidation rates and concentrations in seventeen ponds under a wide range of conditions (pH 2.8 to 6.8 with Fe(II) concentrations of less than 240 mg L-1) from 6 passive treatment facilities. The oxidation rate is modeled based on the combination of published abiotic and bic,logical laboratory rate laws. Although many other variables have been observed to influence Fe(II) oxidation rates, the 7 variables above allow field systems to be modeled reasonably accurately for conditions in this study. Measured T. ferrooxidians concentrations were approximately 10(7) times lower than concentrations required in the model to accurately predict field Fe(II) concentrations. This result suggests that either 1) the most probable number enumeration method underestimated the bacterial concentrations, or 2) the biological rate law employed underestimated the influence of bacteria, ol both. Due to this discrepancy, bacterial concentrations used in the model for pH values of less than 5 are treated as fit parameters rather than empirically measured values. Predicted Fe(II) concentrations in ponds agree well with measured Fe(II) concentrations, and predicted oxidation rates also agree well with field-measured rates. From pH 2.8 to approximately pH 5, Fe(II) oxidation rates are negatively correlated with pH and catalyzed by T. ferrooxidans. From pH 5 to 6.4, Fe(II) oxidation appears to be primarily abiotic and is positively correlated with pH. Above pH 6.4, oxidation appears to be independent of pH. Above pH 5, treatment efficiency is affected most by changing design parameters in the following order: pH > temperature approximate to influent Fe(II) > pond volume approximate to O-2. Little to no increase in Fe(II) oxidation rate occurs due to pH increases above pH 6.4. Failure to consider Fe(II) oxidation rates in treatment system design may result in insufficient Fe removal. (C) 1999 Elsevier Science Ltd. All rights reserved.
机构:
US Geol Survey, Penn Water Sci Ctr, 215 Limekiln Rd, New Cumberland, PA 17070 USAUS Geol Survey, Penn Water Sci Ctr, 215 Limekiln Rd, New Cumberland, PA 17070 USA
Cravotta, C. A., III
Geroni, J. N.
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Cardiff Univ, Cardiff Sch Engn, Cardiff CF24 3AA, S Glam, WalesUS Geol Survey, Penn Water Sci Ctr, 215 Limekiln Rd, New Cumberland, PA 17070 USA
Geroni, J. N.
RELIABLE MINE WATER TECHNOLOGY: PROCEEDINGS OF THE INTERNATIONAL MINE WATER ASSOCIATION ANNUAL CONFERENCE 2013, VOLS I & II,
2013,
: 949
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954
机构:
Univ Lorraine, Lab Chim Phys & Microbiol Environm, Inst Jean Barriol, UMR 7564, F-54601 Villers Les Nancy, France
CNRS, Lab Chim Phys & Microbiol Environm, UMR 7564, F-54601 Villers Les Nancy, FranceUniv Lorraine, Lab Chim Phys & Microbiol Environm, Inst Jean Barriol, UMR 7564, F-54601 Villers Les Nancy, France
Etique, Marjorie
Jorand, Frederic P. A.
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Univ Lorraine, Lab Chim Phys & Microbiol Environm, Inst Jean Barriol, UMR 7564, F-54601 Villers Les Nancy, France
CNRS, Lab Chim Phys & Microbiol Environm, UMR 7564, F-54601 Villers Les Nancy, FranceUniv Lorraine, Lab Chim Phys & Microbiol Environm, Inst Jean Barriol, UMR 7564, F-54601 Villers Les Nancy, France
Jorand, Frederic P. A.
Zegeye, Asfaw
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Univ Lorraine, Lab Chim Phys & Microbiol Environm, Inst Jean Barriol, UMR 7564, F-54601 Villers Les Nancy, France
CNRS, Lab Chim Phys & Microbiol Environm, UMR 7564, F-54601 Villers Les Nancy, FranceUniv Lorraine, Lab Chim Phys & Microbiol Environm, Inst Jean Barriol, UMR 7564, F-54601 Villers Les Nancy, France
Zegeye, Asfaw
Gregoire, Brian
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Univ Lorraine, Lab Chim Phys & Microbiol Environm, Inst Jean Barriol, UMR 7564, F-54601 Villers Les Nancy, France
CNRS, Lab Chim Phys & Microbiol Environm, UMR 7564, F-54601 Villers Les Nancy, FranceUniv Lorraine, Lab Chim Phys & Microbiol Environm, Inst Jean Barriol, UMR 7564, F-54601 Villers Les Nancy, France
Gregoire, Brian
Despas, Christelle
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Univ Lorraine, Lab Chim Phys & Microbiol Environm, Inst Jean Barriol, UMR 7564, F-54601 Villers Les Nancy, France
CNRS, Lab Chim Phys & Microbiol Environm, UMR 7564, F-54601 Villers Les Nancy, FranceUniv Lorraine, Lab Chim Phys & Microbiol Environm, Inst Jean Barriol, UMR 7564, F-54601 Villers Les Nancy, France
Despas, Christelle
Ruby, Christian
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Univ Lorraine, Lab Chim Phys & Microbiol Environm, Inst Jean Barriol, UMR 7564, F-54601 Villers Les Nancy, France
CNRS, Lab Chim Phys & Microbiol Environm, UMR 7564, F-54601 Villers Les Nancy, FranceUniv Lorraine, Lab Chim Phys & Microbiol Environm, Inst Jean Barriol, UMR 7564, F-54601 Villers Les Nancy, France