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Author (down) Ziemkiewicz, P.; Skousen, J.; Simmons, J.
Title Cost benefit analysis of passive treatment systems Type Journal Article
Year 2001 Publication Abbreviated Journal
Volume Issue Pages
Keywords acid mine drainage; acidification; Augusta coal field; Big Bear Lake; carbonate rocks; coal mines; cost; dams; drainage basins; economics; ferric iron; Indiana; iron; limestone; metals; mines; optimization; oxidation; Pike County Indiana; pollution; Preston County West Virginia; pyrite; sedimentary rocks; South Fork Patoka River; spoils; sulfate ion; sulfides; surface water; United States; water pollution; water quality; water resources; water treatment; West Virginia 22, Environmental geology
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Publisher West Virginia Surface Mine Drainage Task Force Symposium Place of Publication Editor
Language Summary Language Original Title
Series Editor Series Title Proceedings, 22nd West Virginia surface mine drainage task force symposium Abbreviated Series Title
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ISSN ISBN Medium
Area Expedition Conference
Notes 2002-047125; Twenty-second West Virginia surface mine drainage task force symposium, Morgantown, WV, United States, April 3-4, 2001 References: 7; illus. incl. 9 tables; GeoRef; English Approved no
Call Number CBU @ c.wolke @ 5766 Serial 191
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Author (down) Zhuang, J.M.
Title Lignor(TM) process for acidic rock drainage treatment Type Journal Article
Year 2004 Publication Environ. Technol. Abbreviated Journal
Volume 25 Issue 9 Pages 1031-1040
Keywords mine water treatment
Abstract The process using lignosulfonates for acidic rock drainage (ARD) treatment is referred to as the Lignor(TM) process. Lignosulfonates are waste by-products produced in the sulfite pulping process. The present study has shown lignosulfonates are able to protect lime from developing an external surface coating, and hence to favor its dissociation. Further, the addition of lignosulfonates to ARD solutions increased the clotting and settling rate of the formed sludge. The capability of lignosulfonates to form stable metal-lignin complexes makes them very useful in retaining metal ions and thus improving the long-term stability of the sludge against leaching. The Lignor(TM) process involves metal sorption with lignosulfonates, ARD neutralization by lime to about pH 7, pH adjustment with caustic soda to 9.4 – 9.6, air oxidation to lower the pH to a desired level, and addition of a minimum amount of FeCl3 for further removal of dissolved metals. The Lignor(TM) process removes all concerned metals (especially Al and Mn) from the ARD of the Britannia Mine (located at Britannia Beach, British Columbia, Canada) to a level lower than the limits of the B.C. Regulations. Compared with the high-density sludge (HDS) process, the Lignor(TM) process has many advantages, such as considerable savings in lime consumption, greatly reduced sludge volume, and improved sludge stability.
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Notes Lignor(TM) process for acidic rock drainage treatment; Wos:000224971800006; Times Cited: 0; ISI Web of Science Approved no
Call Number CBU @ c.wolke @ 16998 Serial 117
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Author (down) Zaluski, M.
Title Design and construction of bioreactors with sulfate-reducing bacteria for acid mine drainage control Type Journal Article
Year 1999 Publication Phytoremediation and Innovative Strategies for Specialized Remedial Applications Abbreviated Journal
Volume Issue Pages 205-210
Keywords mine water treatment
Abstract At many abandoned mine sites in the Western U.S., conventional treatment of AMD is not feasible due to the of lack of power and limited site accessibility. Therefore, three bioreactors were built at an abandoned mine site in Montana to demonstrate feasibility of treating AMD using sulphate reducing bacteria (SRB) in a passive water treatment train. The SRB are capable of increasing the pH and reducing the load of dissolved metals in the effluent. The reactors, constructed in the Fall of 1998, were designed to evaluate the SRB technology applied under different environmental conditions. Each bioreactor was designed with mechanisms to enable simulation of seasonal dry and wet climatic conditions. Two bioreactors were placed in trenches and one was constructed above the ground to investigate impact of seasonal freezing and thawing on SRB activity. Two bioreactors contain a passive pretreatment section to increase pH of water before the AMD enters the bioreactor chamber.
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Notes Design and construction of bioreactors with sulfate-reducing bacteria for acid mine drainage control; Isip:000082416500033; Times Cited: 0; ISI Web of Science Approved no
Call Number CBU @ c.wolke @ 17136 Serial 177
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Author (down) Younger, P.L.; Cornford, C.
Title Mine water pollution from Kernow to Kwazulu-Natal; geochemical remedial options and their selection in practice Type Journal Article
Year 2002 Publication Abbreviated Journal
Volume Issue Pages
Keywords Africa Bolivia case studies Cornwall England cost decision-making decontamination Durham England England Europe geochemistry Great Britain Hlobane Colliery hydrology Kernow England KwaZulu-Natal South Africa metals Milluni Mine mine drainage monitoring pollutants pollution Quaking Houses England remediation South Africa South America South Crofty Mine South-West England Southern Africa United Kingdom water treatment Western Europe Wheal Jane Mine 22, Environmental geology
Abstract Pollution by mine drainage is a major problem in many parts of the world. The most frequent contaminants are Fe, Mn, Al and SO (sub 4) with locally important contributions by other metals/metalloids including (in order of decreasing frequency) Zn, Cu, As, Ni, Cd and Pb. Remedial options for such polluted drainage include monitored natural attenuation, physical intervention to minimise pollutant release, and active and passive water treatment technologies. Based on the assessment of the key hydrological and geochemical attributes of mine water discharges, a rational decision-making framework has now been developed for deciding which (or which combinations) of these options to implement in a specific case. Five case studies illustrate the application of this decision-making process in practice: Wheal Jane and South Crofty (Cornwall), Quaking Houses (Co Durham), Hlobane Colliery (South Africa) and Milluni Tin Mine (Bolivia). In many cases, particularly where the socio-environmental stakes are particularly high, the economic, political and ecological issues will prove even more challenging than the technical difficulties involved in implementing remedial interventions which will be robust in the long term. Hence truly “holistic” mine water remediation is a multi-dimensional business, involving teamwork by a range of geoscientific, hydroecological and socio-economic specialists.
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Publisher Proceedings of the Ussher Society, vol.10, Part 3 Place of Publication Editor
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Series Editor Series Title 40th annual meeting of the Ussher Society Abbreviated Series Title
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Notes 2004-019557; 40th annual meeting of the Ussher Society, Saint Austell, United Kingdom, Jan. 3-4, 2002 Scott Simpson lecture References: 39; illus. incl. 3 tables; GeoRef; English Approved no
Call Number CBU @ c.wolke @ 16506 Serial 194
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Author (down) Younger, P.L.; Banwart, S.A.; Hedin, R.S.
Title Type Book Whole
Year 2002 Publication Abbreviated Journal
Volume Issue Pages
Keywords acid mine drainage acidification active treatment aquifer vulnerability aquifers bioremediation chemical composition critical load decision-making discharge engineering properties geomembranes ground water impact statements karst hydrology microorganisms mine dewatering mines natural attenuation pollution regulations remediation risk assessment sedimentation sludge solute transport surface water tailings tailings ponds waste management water management water pollution water quality weathering wetlands 22, Environmental geology
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Publisher Kluwer Academic Publishers Place of Publication Dordrecht Editor Alloway, B.J.; Trevors, J.T.
Language Summary Language Original Title
Series Editor Series Title Mine water; hydrology, pollution, remediation Abbreviated Series Title
Series Volume Series Issue Edition
ISSN ISBN 140200138x; 1202001371 Medium
Area Expedition Conference
Notes Mine water; hydrology, pollution, remediation; 2003-030514; GeoRef; English; Includes appendix References: 516; illus. Approved no
Call Number CBU @ c.wolke @ 16504 Serial 196
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