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Author (up) Gusek, J.J. openurl 
  Title Passive-treatment of acid rock drainage: what is the potential bottom line? Type Journal Article
  Year 1995 Publication Min. Eng. Abbreviated Journal  
  Volume 47 Issue 3 Pages 250-253  
  Keywords mining acid drainage passive treatment system 3 Geology  
  Abstract Passive-treatment systems that mitigate acid-rock drainage from coal mines have been operating since the mid-1980s. Large systems at metal mines are being contemplated. A typical man-made passive-treatment-system can mimic a natural wetland by employing the same geochemical principles. Passive-treatment systems, however, are engineered to optimize the biogeochemical processes occurring in a natural wetland ecosystem. The passive-treatment methodology holds promise over chemical neutralization because large volumes of sludge are not generated. Metals may be precipitated as oxides, sulfides or carbonates in the passive-treatment system substrate. The key goal of a passive-treatment system is the long-term immobilization of metals in the substrate materials. The passive-treatment technique may not be applicable in all mine-drainage situations. -from Author  
  Address Knight-Piesold & Co, 1050 17th St., Suite 500, Denver, CO, 80265- 0550, USA  
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  Notes Passive-treatment of acid rock drainage: what is the potential bottom line?; (1121863); 95k-12693; Using Smart Source Parsing pp; Geobase Approved no  
  Call Number CBU @ c.wolke @ 17638 Serial 365  
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Author (up) Jarvis, A.P.; Younger, P.L. url  openurl
  Title Passive treatment of ferruginous mine waters using high surface area media Type Journal Article
  Year 2001 Publication Water Res. Abbreviated Journal  
  Volume 35 Issue 15 Pages 3643-3648  
  Keywords mine water treatment passive treatment mine water accretion oxidation iron manganese water treatment  
  Abstract Rapid oxidation and accretion of iron onto high surface area media has been investigated as a potential passive treatment option for ferruginous, net-alkaline minewaters. Two pilot-scale reactors were installed at a site in County Durham, UK. Each 2.0m high cylinder contained different high surface area plastic trickling filter media. Ferruginous minewater was fed downwards over the media at various flow-rates with the objective of establishing the efficiency of iron removal at different loading rates. Residence time of water within the reactors was between 70 and 360s depending on the flow-rate (1 and 12l/min, respectively). Average influent total iron concentration for the duration of these experiments was 1.43mg/l (range 1.08-1.84mg/l; n=16), whilst effluent iron concentrations averaged 0.41mg/l (range 0.20-1.04mg/l; n=15) for Reactor A and 0.38mg/l (range 0.11-0.93mg/l; n=16) for Reactor B. There is a strong correlation between influent iron load and iron removal rate. Even at the highest loading rates (approximately 31.6g/day) 43% and 49% of the total iron load was removed in Reactors A and B, respectively. At low manganese loading rates (approximately 0.50-0.90g/day) over 50% of the manganese was removed in Reactor B. Iron removal rate (g/m3/d) increases linearly with loading rate (g/day) up to 14g/d and the slope of the line indicates that a mean of 85% of the iron is removed. In conclusion, it appears that the oxidation and accretion of ochre on high surface area media may be a promising alternative passive technology to constructed wetlands at certain sites.  
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  ISSN 0043-1354 ISBN Medium  
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  Notes Oct; Passive treatment of ferruginous mine waters using high surface area media; 9; file:///C:/Dokumente%20und%20Einstellungen/Stefan/Eigene%20Dateien/Artikel/9698.pdf; AMD ISI | Wolkersdorfer Approved no  
  Call Number CBU @ c.wolke @ 9698 Serial 27  
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Author (up) Kleinmann, R.L.P. openurl 
  Title Acid Mine Water Treatment using Engineered Wetlands Type Journal Article
  Year 1990 Publication Int. J. Mine Water Abbreviated Journal  
  Volume 9 Issue 1-4 Pages 269-276  
  Keywords wetlands AMD passive treatment pollution control water treatment abandoned mines biological treatment pH bacterial oxidation wetland sizing sphagnum  
  Abstract 400 systems installed within 4 years During the last two decades, the United States mining industry has greatly increased the amount it spends on pollution control. The application of biotechnology to mine water can reduce the industry's water treatment costs (estimated at over a million dollars a day) and improve water quality in streams and rivers adversely affected by acidic mine water draining from abandoned mines. Biological treatment of mine waste water is typically conducted in a series of small excavated ponds that resemble, in a superficial way, a small marsh area. The ponds are engineered to first facilitate bacterial oxidation of iron; ideally, the water then flows through a composted organic substrate that supports a population of sulfate-reducing bacteria. The latter process raises the pH. During the past four years, over 400 wetland water treatment systems have been built on mined lands as a result of research by the U.S. Bureau of Mines. In general, mine operators find that the wetlands reduce chemical treatment costs enough to repay the cost of wetland construction in less than a year. Actual rates of iron removal at field sites have been used to develop empirical sizing criteria based on iron loading and pH. If the pH is 6 or above, the wetland area (in2) required is equivalent to the iron. load (grams/day) divided by 10. Theis requirement doubles at a pH of 4 to 5. At a pH below 4, the iron load (grams/day) should be divided by 2 to estimate the area required (in2).  
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  ISSN 0255-6960 ISBN Medium  
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  Notes Acid Mine Water Treatment using Engineered Wetlands; 1; Fg; AMD ISI | Wolkersdorfer Approved no  
  Call Number CBU @ c.wolke @ 17368 Serial 328  
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Author (up) Kuyucak, N. url  openurl
  Title Mining, the Environment and the Treatment of Mine Effluents Type Journal Article
  Year 1998 Publication Int. J. Environ. Pollut. Abbreviated Journal  
  Volume 10 Issue 2 Pages 315-325  
  Keywords mine water treatment acid mine drainage high density sludge lime neutralization mining environment passive treatment sulfate-reducing bacteria  
  Abstract The environmental impact of mining on the ecosystem, including land, water and air, has become an unavoidable reality. Guidelines and regulations have been promulgated to protect the environment throughout mining activities from start-up to site decommissioning. In particular, the occurrence of acid mine drainage (AMD), due to oxidation of sulfide mineral wastes, has become the major area of concern to many mining industries during operations and after site decommissioning. AMD is characterized by high acidity and a high concentration of sulfates and dissolved metals. If it cannot be prevented or controlled, it must be treated to eliminate acidity, and reduce heavy metals and suspended solids before release to the environment. This paper discusses conventional and new methods used for the treatment of mine effluents, in particular the treatment of AMD.  
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  ISSN 0957-4352 ISBN Medium  
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  Notes Mining, the Environment and the Treatment of Mine Effluents; Isi:000078420600009; AMD ISI | Wolkersdorfer Approved no  
  Call Number CBU @ c.wolke @ 17477 Serial 56  
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Author (up) Laine, D.M.; Jarvis, A.P. openurl 
  Title Design aspects of passive in situ remediation schemes for minign & industrial effluents Type Journal Article
  Year 2003 Publication Tübinger Geowissenschaftliche Arbeiten Abbreviated Journal  
  Volume C68 Issue Pages 95-113  
  Keywords mine water passive treatment  
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  ISSN 0935-4948 ISBN Medium  
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  Notes Design aspects of passive in situ remediation schemes for minign & industrial effluents; 1; FG 1 Abb., 2 Tab.; AMD ISI | Wolkersdorfer Approved no  
  Call Number CBU @ c.wolke @ 9759 Serial 319  
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