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1

author, Tompeck Mark, ed. Iron and manganese removal handbook. Denver, CO: American Water Works Association, 2015.

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2

Hermanson, Ronald E. The stainers--iron and manganese removal. [Pullman]: Cooperative Extension, Washington State University, 1991.

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3

Hermanson, Ronald E. The stainers--iron and manganese removal. [Pullman]: Cooperative Extension, Washington State University, 1991.

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4

Bruce, Robinson R., AWWA Research Foundation, and American Water Works Association, eds. Sequestering methods of iron and manganese treatment. Denver, CO: AWWA Research Foundation, 1990.

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5

Stowe, Ryan J. Arsenic removal from drinking water by iron removal: U.S. EPA demonstration project at Northeastern Elementary School in Fountain City, IN, final performance evaluation report. Cincinnati, Ohio: National Risk Management Research Laboratory, Office of Research and Development, U.S. Environmental Protection Agency, 2011.

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6

Knocke, William R. Impacts of dissolved organic carbon on iron removal. Denver, CO: The Foundation and American Water Works Association, 1993.

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7

Olthoff, Reinhold. Die Enteisenung und Entmanganung von Grundwasser im Aquifer. Hannover: Institut für Siedlungswasserwirtschaft und Abfalltechnik der Universität Hannover, 1986.

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8

Appleman, Bernard R. Lead-based paint removal for steel highway bridges. Washington, D.C: National Academy Press, 1997.

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9

Adams, R. C. Destruction and removal of POHCs in iron making blast furnaces. Cincinnati, OH: U.S. Environmental Protection Agency, Research and Development, Hazardous Waste Engineering Research Laboratory, 1988.

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10

McHerron, L. E. Iron removal in a simulated wetland for acid mine drainage treatment. S.l: s.n, 1987.

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11

Vachon, D. T. Removal of iron cyanide from gold mill effluents by ion exchange. S.l: s.n, 1985.

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12

Twidwell, L. G. Metal value recovery from metal hydroxide sludges: Removal of iron and recovery of chromium. Cincinnati, OH: U.S. Environmental Protection Agency, Hazardous Waste Engineering Research Laboratory, 1988.

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13

Twidwell, L. G. Metal value recovery from metal hydroxide sludges: Removal of iron and recovery of chromium. Cincinnati, OH: U.S. Environmental Protection Agency, Hazardous Waste Engineering Research Laboratory, 1988.

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14

Gonzalez-Beca, C. J. G. Study of zinc and copper removal by iron (III) and (II) oxyhydroxides. [s.l.]: International Mine Water Association, 1985.

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15

Sun, Qingyun. Iron and acid removal from acid mine drainage in open limestone systems. Morgantown, WV: College of Agriculture, Forestry and Consumer Sciences, West Virginia University, 2000.

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16

Gerber, D. W. Removal of dissolved iron and manganese ions by a sphagnum moss system. S.l: s.n, 1985.

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17

Jafar, Shamsuddin Abu, Mahmud Shamsul Gafur, and ITN-Bangladesh (Network), eds. Development of community based arsenic & iron removal unit for rural water supply system. Dhaka: ITN-Bangladesh, Centre for Water Supply and Waste Management, BUET, 2005.

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18

Benjamin, Mark M. Adsorption and filtration studies using iron-oxide-coated olivine as a medium. Denver, CO: AWWA Research Foundation and the American Water Works Association, 1995.

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19

Boll, J. E. The use of potassium permanganate for iron and manganese removal from acid mine drainage. S.l: s.n, 1985.

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20

Calabrese, Joseph P. Simulated typha wetlands applied to removal of iron and manganese from acid mine drainage. S.l: s.n, 1990.

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21

Majcherek, Hanna. Metodyka obliczania stacji wodociągowych z zakładem odżelaziania wody ; Matematyczne modelowanie kanałów o założonej charakterystyce prędkości przepływu. Poznań: Wydawn. Politechniki Poznańskiej, 1990.

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22

P, Brooks Rovert, Tarutis William John, United States. Bureau of Mines, and Pennsylvania State University. Environmental Resources Research Institute, eds. Long-term removal and retention of iron and manganese from acidic mine drainage by wetlands. [Washington, DC]: Bureau of Mines, U.S. Dept. of the Interior, 1990.

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23

P, Brooks Rovert, Tarutis William John, United States. Bureau of Mines., and Pennsylvania State University. Environmental Resources Research Institute., eds. Long-term removal and retention of iron and manganese from acidic mine drainage by wetlands. [Washington, DC]: Bureau of Mines, U.S. Dept. of the Interior, 1990.

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24

P, Brooks Rovert, Tarutis William John, United States. Bureau of Mines, and Pennsylvania State University. Environmental Resources Research Institute, eds. Long-term removal and retention of iron and manganese from acidic mine drainage by wetlands. [Washington, DC]: Bureau of Mines, U.S. Dept. of the Interior, 1990.

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25

P, Brooks Rovert, Tarutis William John, United States. Bureau of Mines., and Pennsylvania State University. Environmental Resources Research Institute., eds. Long-term removal and retention of iron and manganese from acidic mine drainage by wetlands. [Washington, DC]: Bureau of Mines, U.S. Dept. of the Interior, 1990.

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26

Sommer, John T. Removal of copper and iron contamination from chromic acid electroplating baths using electrodialysis with caustic catholyte. Springfield, Va: Available from the National Technical Information Service, 1991.

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27

J, Bruckard W., and Australasian Institute of Mining and Metallurgy, eds. Effect of iron removal and reduction on gold and silver extraction by thiourea leaching of a pressure oxidation product. Parkville: Australasian Institute of Mining and Metallurgy, 1991.

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28

Dobson, Robert D. We're going to the 1845 Jackson Mine, Negaunee, Michigan: Including the Mather "B" Mine, removal of homes and buildings, the remains of "Old Town," and the New Heritage Trail. Negaunee, Michigan: Dobson Publications, 2012.

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29

National Research Council (U.S.). Transportation Research Board. Committee for Study of Impacts of Highway Capacity Improvements on Air Quality and Energy Consumption., ed. Expanding metropolitan highways: Implications for air quality and energy use. Washington, D.C: Transportation Research Board, National Research Council, 1995.

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30

Ternovaya, Lyudmila. War and peace in a hybrid dimension. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/1058362.

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The monograph is devoted to the analysis of the current topic of hybrid war, in which the thin red lines separating it from peaceful life can both turn into an impenetrable iron curtain, and become a bright and attractive advertisement for another country and culture, forcing you to immerse yourself in another world, and not perceive it as a rival. Neither international law, nor the tools for identifying all the figures of international relations involved in resolving issues of war and peace, nor culture can correct the mutual distortions of hybrid war and hybrid peace. And yet, it is possible to find such facts that help to remove hybrid layers and reach the true interests, goals and means of those geopolitical actors who benefit from such a complex hybrid game of war and peace. It is intended for specialists in the field of international relations, history, culture. It will also arouse the interest of a wide range of readers.
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31

Sharma, Sharoz Kumar. Adsorptive Iron Removal from Groundwater. Taylor & Francis Group, 2021.

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32

Sommerfeld, Elmer O. Iron and Manganese Removal Handbook. American Water Works Association, 1999.

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33

Sharma, Sharoz Kumar. Adsorptive Iron Removal from Groundwater. Taylor & Francis Group, 2021.

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34

Sharma, Sharoz Kumar. Adsorptive Iron Removal from Groundwater. Taylor & Francis Group, 2021.

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35

Sharma, Saroj Kumar. Adsorptive Iron Removal from Groundwater (IHE Dissertation). CRC, 2001.

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36

Alternative oxidants for the removal of soluble iron and manganese. Denver, CO: AWWA Research Foundation and American Water Works Association, 1990.

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37

Design manual: Removal of arsenic from drinking water supplies by iron removal process. Cincinnati, OH: National Risk Management Research Laboratory, Office of Research and Development, U.S. Environmental Protection Agency, 2006.

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38

Beneficiation of bauxite for removal of iron oxide. [New Delhi: Technology Information Forecasting & Assessment Council, 2000.

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39

Richard, Buamah. Adsorptive Removal of Manganese Arsenic and Iron from Groundwater. Taylor & Francis Group, 2009.

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40

Rentz, Jeremy. Phosphorus Removal Potential Using Biogenic Iron Oxides: Werf Report U1R07. IWA Publishing, 2011.

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41

NOM adsorption onto iron-oxide-coated sand. Denver, CO: The Foundation and American Water Works Association, 1993.

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42

Joshi, N. S. Up- and downflow filtration for iron removal from groundwater in hand pump connection. Copenhagen, Denmark : Dept. of Environmental Engineering, Technical University of Denmark, 1988.

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43

Hartmann, Peter. Iron and Manganese Removal (Working Papers on Water Supply & Environmental Sanitation). The Swiss Centre for Development Cooperation (SKAT, 2002.

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44

Irene M. C. Lo (Editor), Rao Y. Surampalli (Editor), and Keith C. K. Lai (Editor), eds. Zero-Valent Iron Reactive Materials for Hazardous Waste and Inorganics Removal. American Society of Civil Engineers, 2006.

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45

Lead-containing paint removal, containment, and disposal. McLean, Va: U.S. Dept. of Transportation, Federal Highway Administration, Research and Development, Turner-Fairbank Highway Research Center, 1995.

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46

Iron removal from acid mine drainage in wetlands by optimizing sulfate reduction. S.l: s.n, 1993.

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47

Johnson, Paul, and Paul Westerhoff. A Zero-Valent Iron (Feo) Packed-Bed Treatment Process. Amer Water Works Assn, 2001.

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48

Buamah, Richard. Adsorptive Removal of Manganese,Arsenic and Iron from Groundwater: UNESCO-IHE PhD Thesis. Taylor & Francis Group, 2017.

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49

Khaodhiar, Sutha. Removal of chromium, copper, and arsenic from contaminated groudwater using iron-oxide composite adsorbents. 1997.

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50

Long-term removal and retention of iron and manganese from acidic mine drainage by wetlands. [Washington, DC]: Bureau of Mines, U.S. Dept. of the Interior, 1990.

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