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Author |
Lovell, H.L. |
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Title |
Limestone Treatment Of Coal Mine Drainage |
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Journal Article |
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Year |
1971 |
Publication |
Min. Congr. J. |
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57 |
Issue |
10 |
Pages |
28-& |
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Keywords |
mine water treatment |
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0026-5160 |
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Limestone Treatment Of Coal Mine Drainage; Wos:A1971k631900002; Times Cited: 1; J Allen Overton Jr, 1920 N St Nw, Washington, DC 20036; ISI Web of Science |
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Call Number |
CBU @ c.wolke @ 9263 |
Serial |
101 |
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Author |
Lovell, H.L. |
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Title |
Mine Water Treatment Control |
Type |
Journal Article |
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Year |
1971 |
Publication |
Min. Congr. J. |
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Volume |
57 |
Issue |
6 |
Pages |
83-& |
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mine water treatment |
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Mine Water Treatment Control; Wos:A1971j677200018; Times Cited: 0; ISI Web of Science |
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Call Number |
CBU @ c.wolke @ 9264 |
Serial |
102 |
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Author |
Murayama, T. |
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Title |
Application Of Immobilized Thiobacillus-Ferrooxidans For Large-Scale Treatment Of Acid-Mine Drainage |
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Journal Article |
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Year |
1987 |
Publication |
Methods Enzymol. |
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Volume |
136 |
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Pages |
530-540 |
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mine water treatment |
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Application Of Immobilized Thiobacillus-Ferrooxidans For Large-Scale Treatment Of Acid-Mine Drainage; Wos:A1987m167600047; Times Cited: 6; ISI Web of Science |
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Call Number |
CBU @ c.wolke @ 9106 |
Serial |
92 |
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Author |
Franchet, J. |
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Title |
An example of sulphate removal by nanofiltration – The treatment of iron ore mine water in Lorraine |
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Journal Article |
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Year |
1995 |
Publication |
Membranes in Drinking Water Production |
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27-31 |
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mine water treatment |
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An example of sulphate removal by nanofiltration – The treatment of iron ore mine water in Lorraine; Isip:A1995bh14e00006; Times Cited: 0; ISI Web of Science |
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Call Number |
CBU @ c.wolke @ 8899 |
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136 |
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Author |
Sasaki, K. |
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Title |
Immobilization of Mn(II) ions by a Mn-oxidizing fungus – Paraconiothyrium sp.-like strain at neutral pHs |
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Journal Article |
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Year |
2006 |
Publication |
Mater. Trans. |
Abbreviated Journal |
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Volume |
47 |
Issue |
10 |
Pages |
2457-2461 |
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mine water treatment |
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Abstract |
A Mn-oxidizing fungus was isolated from a constructed wetland of Hokkaido (Japan), which is receiving the Mn-impacted drainage, and genetically and morphologically identified as Paraconiothyrium sp.-like strain. The optimum pHs were 6.45-6.64, where is more acidic than those of previously reported Mn-oxidizing fungi. Too much nutrient inhibited fungal Mn-oxidation, and too little nutrient also delayed Mn oxidation even at optimum pH. In order to achieve the oxidation of high concentrations of Mn like mine drainage containing several hundreds g-m(-3) of Mn, it is important to find the best mix ratio among the initial Mn concentrations, inocolumn size and nutrient concentration. The strain has still Mn-tolerance with more than 380 g-m(-3) of Mn, but high Mn(II) oxidation was limited by pH control and supplied nutrient amounts. The biogenic Mn deposit was poorly crystallized birnessite. The strain is an unique Mn-oxidizing fungus having a high Mn tolerance and weakly acidic tolerance, since there has been no record about the property of the strain. There is a potentiality to apply the strain to the environmental bioremediation. |
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Immobilization of Mn(II) ions by a Mn-oxidizing fungus – Paraconiothyrium sp.-like strain at neutral pHs; Wos:000242429300002; Times Cited: 0; ISI Web of Science |
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Call Number |
CBU @ c.wolke @ 16940 |
Serial |
103 |
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