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1

The World Bank as a knowledge producer: How the bank uses flawed processes to generate unsound knowledge for promoting disastrous policies. Manthan Adhyayan Kendra, 2008.

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2

Lee, Kenneth, and Jerry Neff, eds. Produced Water. Springer New York, 2011. http://dx.doi.org/10.1007/978-1-4614-0046-2.

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Ray, James P., and F. Rainer Engelhardt, eds. Produced Water. Springer US, 1992. http://dx.doi.org/10.1007/978-1-4615-2902-6.

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Reed, Mark, and Ståle Johnsen, eds. Produced Water 2. Springer US, 1996. http://dx.doi.org/10.1007/978-1-4613-0379-4.

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5

Stewart, Maurice. Produced water treatment field manual. Gulf Professional Pub., 2011.

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6

Malley, James P. Evaluation of by-products produced by treatment of groundwaters with ultraviolet irradiation. The Foundation and American Water Works Association, 1995.

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7

Dunne, Ed J., ed. Flowback and Produced Waters. National Academies Press, 2017. http://dx.doi.org/10.17226/24620.

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8

Osann, Edward R. Saving water, saving dollars: Efficient plumbing products and the protection of America's waters. Potomac Resources, Inc., 1998.

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9

Corrosion and water technology for petroleum producers. OGCI Publications, 1988.

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10

P, Ray J., and Engelhardt F. R, eds. Produced water: Technological/environmental issues and solutions. Plenum Press, 1993.

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11

Hutchinson, Heidi. Guidelines for livestock producers. Edited by Hester Carol, Ohio EPA. Division of Surface Water, and Ohio EPA. Public Interest Center. Ohio EPA, Division of Surface Water, 1996.

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12

Thompson, K. Clive, Simon Gillespie, and Emma Goslan, eds. Disinfection By-products in Drinking Water. Royal Society of Chemistry, 2015. http://dx.doi.org/10.1039/9781782622710.

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13

Karanfil, Tanju, Stuart W. Krasner, Paul Westerhoff, and Yuefeng Xie, eds. Disinfection By-Products in Drinking Water. American Chemical Society, 2008. http://dx.doi.org/10.1021/bk-2008-0995.

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14

Waxman, Howard. The U.S. market for bottled water and related water products. Packaged Facts, 2001.

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15

Briggs, David A. Advanced water treatment of estuarine water supplies. AWWA Research Foundation, 2008.

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16

Nasr, S. Z. Characterization of surface active contaminants in waste water and produced water treatment. UMIST, 1996.

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17

Burrill, K. A. Deposition of corrosion products in-core. System Chemistry & Corrosion Branch, Chalk River Laboratories, 1994.

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18

Neff, Jerry M., and Kenneth Lee. Produced water: Environmental risks and advances in mitigation technologies. Springer, 2011.

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19

International Conference on Disinfection By-products: the Way Forward (1998 Cambridge, England). Disinfection by-products in drinking water: Current issues. Royal Society of Chemistry, 1999.

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20

Marie-Claire, Hennion, ed. Trace determination of pesticides and their degradation products in water. Elsevier Science, 1997.

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21

Styler, A. N. Analysis of rock chips produced during water-jet-assisted cutting. U.S. Dept. of the Interior, Bureau of Mines, 1987.

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22

Elizabeth, Norman℗ĐhSheelagh. The optimisation of legacy water treatment works to produce a more consistent final water quality. Aston University. Department of Chemical Engineering and Applied Chemistry, 1994.

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23

1946-, Waters John, ed. John Waters. Thunder's Mouth Press, 1992.

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24

Glammar, Daniel E. Water chemistry effects on dissolution rates of lead corrosion products. Water Research Foundation, 2010.

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25

Salles, Walter. Walter Salles: Uma entrevista. Festival de Cinema Luso Brasileiro de Santa Maria da Feira, 2002.

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26

Hladik, Michelle L. Chloroacetamide herbicides and their transformation products in drinking water. Awwa Research Foundation, 2006.

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27

Carlson, Robert M. The isolation and identification of electrophilic mutagens produced during cholorine disinfection. U.S. Environmental Protection Agency, Health Effects Research Laboratory, 1989.

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28

Bouman, Dick. Smart disinfection solutions: Examples of small-scale disinfection products for safe drinking water. KIT Publishers, 2010.

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29

The World Market for Coal Gas, Water Gas, Producer Gas, and Similar Gases Excluding Petroleum Gases and Other Gaseous Hydrocarbons: A 2004 Global Trade Perspective. Icon Group International, Inc., 2005.

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30

Parker, Philip M. The World Market for Coal Gas, Water Gas, Producer Gas, and Similar Gases Excluding Petroleum Gases and Other Gaseous Hydrocarbons: A 2007 Global Trade Perspective. ICON Group International, Inc., 2006.

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31

Folch, Christine. Hydropolitics. Princeton University Press, 2019. http://dx.doi.org/10.23943/princeton/9780691186603.001.0001.

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This book is a ground-breaking investigation of the world's largest power plant and the ways the energy we use shapes politics and economics. Itaipu Binational Hydroelectric Dam straddles the Paraná River border that divides the two countries that equally co-own the dam, Brazil and Paraguay. It generates the carbon-free electricity that powers industry in both the giant of South America and one of the smallest economies of the region. The book reveals how Paraguayans harness the dam to engineer wealth, power, and sovereignty, demonstrating how energy capture influences social structures. During the dam's construction under the right-wing military government of Alfredo Stroessner and later during the leftist presidency of liberation theologian Fernando Lugo, the dam became central to debates about development, governance, and prosperity. Dams not only change landscapes; the book asserts that the properties of water, transmuted by dams, change states. It argues that the dam converts water into electricity and money to produce hydropolitics through its physical infrastructure, the financial liquidity of energy monies, and the international legal agreements managing transboundary water resources between Brazil and Paraguay, and their neighbors Argentina, Bolivia, and Uruguay. Looking at the fraught political discussions about the future of the world's single largest producer of renewable energy, the book explores how this massive public works project touches the lives of all who are linked to it.
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32

Water Waves Produced by Explosions. Franklin Classics, 2018.

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33

Produced Water Treatment Field Manual. Elsevier, 2011. http://dx.doi.org/10.1016/c2009-0-61889-4.

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34

Haines, Daniel. Conclusion. Oxford University Press, 2017. http://dx.doi.org/10.1093/acprof:oso/9780190648664.003.0009.

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This highlights the book’s two key arguments. First, territoriality and sovereignty were central to water politics in the Indus Basin, with control over water flows necessary to both “internal” and “external” sovereignty. Contradictions and compromises in the India-Pakistan negotiations, and in the water dispute’s entanglement with wider geopolitical issues, showed that South Asian territoriality was not fixed, but under construction. Second, the confluence of sovereignty, territory and water in the Indus dispute represented a particular historical moment in decolonization. Both the trajectories of Indian and Pakistani politics, and broader global trends, produced leaderships that were intent on asserting sovereignty over water resources. The Indus Waters Treaty, on the other hand, depended for its success on the political and financial initiative of the United States, World Bank, and other Cold War geopolitical actors. The chapter finishes with a brief reflection on the state of the Indus treaty today.
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35

Jones, Lloyd W. Corrosion & Water Technology for Petroleum Producers. Oil & Gas Consultants Intl, 1988.

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36

Ray, James P., and F. Rainier Engelhardt. Produced Water: Technological/Environmental Issues and Solutions. Springer, 2012.

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37

Thompson, K. Clive, Simon Gillespie, Emma Goslan, Daniela Trogolo, and Osamah George Ameen Qaseer. Disinfection by-Products in Drinking Water. Royal Society of Chemistry, The, 2015.

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38

Disinfection By-products in Drinking Water. Elsevier, 2020. http://dx.doi.org/10.1016/c2018-0-02575-x.

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39

Disinfection By-Products in Drinking Water. Elsevier, 1999. http://dx.doi.org/10.1016/c2013-0-17905-6.

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40

A, Briggs David, AWWA Research Foundation, Contra Costa Water District (Calif.), et al., eds. Advanced water treatment of estuarine water supplies. AWWA Research Foundation, 2008.

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41

Produced Water 2: Environmental Issues and Mitigation Technologies. Springer, 2011.

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42

Reed, Mark, and Stale Johnsen. Produced Water 2: Environmental Issues and Mitigation Technologies. Springer London, Limited, 2011.

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43

Produced water 2: Environmental issues and mitigation technologies. Plenum Press, 1996.

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44

Stevens, Daryl, ed. Growing Crops with Reclaimed Wastewater. CSIRO Publishing, 2006. http://dx.doi.org/10.1071/9780643093522.

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This comprehensive work examines the fundamentals required for reclaimed water schemes to deliver sustainable farming operations that achieve the yield and quality of produce necessary for acceptance in the market.
 Growing Crops with Reclaimed Wastewater reviews the historical background of water treatment, its use and disposal from Australian wastewater treatment facilities and the technologies now utilised to treat our wastewater for reuse. The major concerns of chemical, physical and pathological qualities of reclaimed water are addressed, ensuring that the environmental, economic and social requirements of today’s society are met.
 It reviews the state and national regulatory requirements and guidelines that have made Australia a world leader in the management of reclaimed water and also examines the guidance in the United States of America (Federal) and in California, the World Health Organization guidance and the situation in Israel.
 This is the first time such a definitive review has been produced on the use of wastewater for horticulture and it will be a key tool for decision makers, researchers and practitioners to understand the main issues and constraints. It will be of particular interest to agricultural scientists, waste and horticulture consultants, engineers, planners, state agencies, environmental officers and students.
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45

Water Efficiency for Your Home Products and Advice Which Save Water. Rocky Mountain Arms & Antiques, 1991.

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46

Hrudey, Steve E., and Jeffrey W. A. Charrois. Disinfection by-Products and Human Health. IWA Publishing, 2012.

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47

Disinfection By-Products: Current Perspectives. Amer Water Works Assn, 1989.

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48

Association, American Water Works, and AWWA Water Quality Technology Conference (1988 : Saint Louis, Mo.), eds. Disinfection by-products: Current perspectives. American Water Works Association, 1989.

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49

Muthu, Subramanian Senthilkannan. Environmental Water Footprints: Agricultural and Consumer Products. Springer, 2018.

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50

Environmental Water Footprints: Agricultural and Consumer Products. Springer, 2018.

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