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1

Willigen, Peter de. Roots, plant production and nutrient use efficiency. Wageningen: Landbouwuniversiteit te Wageningen, 1987.

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2

American Society of Civil Engineers. Task Committee on Water Requirements of Natural Vegetation. Water use by naturally occurring vegetation: An annotated bibliography : a report. New York, N.Y: The Society, 1989.

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3

New York (State). Legislature. Assembly. Standing Committee on Cities. Public hearing on use of parkland for location of City of New York drinking water filtration plant. [Mineola]: EN-DE Reporting Services, 2003.

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4

Zhi wu guang he, zheng teng yu shui fen li yong de sheng li sheng tai xue: Ecophysiology of plant photosynthesis, transpiration, and water use. Beijing: Ke xue chu ban she, 2010.

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5

Bacon, Elise. Use of economic instruments for water pollution control: Mass-based wastewater discharge fees on mercury and silver loadings to Spokane's advanced wastewater treatment plant. [Olympia? Wash.]: Washington State Dept. of Ecology, 1993.

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6

"Plant Nutrient Use and the Environment" Symposium (1985 Kansas City, Mo.). Summarized proceedings of the "Plant Nutrient Use and the Environment" Symposium: October 21-23, 1985, Kansas City, Missouri. Washington, D.C: Fertilizer Institute, 1985.

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7

Pritchard, Jackie Lee. Food chemistry, food toxicants, medicinal plant use, geophagy, and drinking behavior of feral & free-ranging primates: A selective bibliography, 1985-mid-1994. Seattle, Wash: Primate Information Center, Regional Primate Research Center, University of Washington, 1994.

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8

Shuler, Carol. Low-water-use plants: For California & the Southwest. Tucson, Ariz: Fisher Books, 1993.

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9

Federation of Indian Chambers of Commerce and Industry. Water use and efficiency in thermal power plants. New Delhi: Federation of Indian Chambers of Commerce and Industry, 2012.

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10

Desideri, Umberto, Giampaolo Manfrida, and Enrico Sciubba, eds. ECOS 2012. Florence: Firenze University Press, 2012. http://dx.doi.org/10.36253/978-88-6655-322-9.

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The 8-volume set contains the Proceedings of the 25th ECOS 2012 International Conference, Perugia, Italy, June 26th to June 29th, 2012. ECOS is an acronym for Efficiency, Cost, Optimization and Simulation (of energy conversion systems and processes), summarizing the topics covered in ECOS: Thermodynamics, Heat and Mass Transfer, Exergy and Second Law Analysis, Process Integration and Heat Exchanger Networks, Fluid Dynamics and Power Plant Components, Fuel Cells, Simulation of Energy Conversion Systems, Renewable Energies, Thermo-Economic Analysis and Optimisation, Combustion, Chemical Reactors, Carbon Capture and Sequestration, Building/Urban/Complex Energy Systems, Water Desalination and Use of Water Resources, Energy Systems- Environmental and Sustainability Issues, System Operation/ Control/Diagnosis and Prognosis, Industrial Ecology.
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11

Laughlin, Jack Kenneth. Study of saline water use at the Harry Allen Generating Station. Denver, CO: U.S. Dept. of the Interior, Bureau of Reclamation, 1986.

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12

Beaumont, Jean-Pierre. Evaluation de performance de 381 ouvrages municipaux d'assainissement des eaux pour l'année 2001: Ouvrages de surverse et stations d'épuration : rapport. Québec]: Affaires municipales et métropole Québec, 2003.

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13

Diehl, Timothy H. Withdrawal and consumption of water by thermoelectric power plants in the United States, 2010. Reston, Virginia: U.S. Geological Survey, 2014.

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14

Lines, Gregory C. Riparian vegetation and its water use during 1995 along the Mojave River, Southern California. Sacramento, Calif: U.S. Dept. of the Interior, U.S. Geological Survey, 1996.

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15

Lines, Gregory C. Riparian vegetation and its water use during 1995 along the Mojave River, Southern California. Sacramento, Calif: U.S. Dept. of the Interior, U.S. Geological Survey, 1996.

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16

Lines, Gregory C. Riparian vegetation and its water use during 1995 along the Mojave River, Southern California. Sacramento, Calif: U.S. Dept. of the Interior, U.S. Geological Survey, 1996.

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17

Nigro, Giampiero, ed. Gestione dell'acqua in Europa (XII-XVIII Secc.) / Water Management in Europe (12th-18th centuries). Florence: Firenze University Press, 2018. http://dx.doi.org/10.36253/978-88-6453-700-9.

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Water was a source of wealth which facilitated, fostered or brutally halted economic development in the Ancien Regime. Lack of hygiene meant that water was used less for drinking than other drinks, but as a raw material, source of energy, cooling, rinsing and cleansing agent, water was unequalled. It played a role in public and private relaxation and in health. Water also proved to be an ideal, safe and cheap means of transporting goods and ideas. Urban historians have long pointed to the enormous comparative advantage enjoyed by towns and regions whose favourable maritime or riverine location gave them access to cheap water-borne transport. But water just as often posed a threat to economic development and prosperity, whether due to its absence or its specific composition or level of pollution or to uncontrollable abundance. This duality is still present today in our modern, globalised society. While huge quantities of fresh, potable water are wasted in the West, free or cheap access to fresh and abundant water supplies remains a major challenge for millions of individuals on the planet. Major floods in different parts of the world regularly cause economic damage and endless human suffering. With a Settimana devoted to the management of the water supply, excluding related topics as water consumption, water transport and the use of water in agriculture and industry, the Istituto Datini is seeking to draw attention.
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18

Abdullaev, K. M. Urban waste waters: Treatment for use in steam and power generation. London: Ellis Horwood, 1992.

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19

Brand, Ronald A. Disclaimers in estate planning: A guide to their effective use. Chicago, Ill: Section of Real Property, Probate and Trust Law, American Bar Association, 1990.

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20

Leenhouts, James M. Hydrologic requirements of and consumptive ground-water use by riparian vegetation along the San Pedro River, Arizona. Reston, Va: U.S. Geological Survey, 2006.

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21

International Clean Water Conference (1995 La Jolla, Calif.). Clean water: Factors that influence its availability, quality, and its use. Edited by Chow Winston, Brocksen Robert W, and Wisniewski Joe. Dordrecht: Kluwer Acaemic Publishers, 1996.

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22

Korling, Torkel. Wetlands and quiet waters of the Midwest. Bloomington, Ind: Indiana University Press, 2005.

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23

André, Lawalrée, ed. Les jardins aquatiques: Un rêve, un défi, une découverte! Bruxelles, Belgique: Vander, 1987.

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24

Cienciala, Emil. Sap flow, transpiration, and water use efficiency of spruce and willow in relation to climatic factors. Uppsala: Swedish University of Agricultural Sciences, Dept. of Ecology and Environmental Research, 1994.

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25

Julian, Fennessy, Schneider Stephanie, Desert Research Foundation of Namibia., and Gobabeb Training and Research Centre., eds. Hoanib River catchment study, northwestern Namibia: Water. Windhoek: Desert Research Foundation of Namibia, 2001.

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26

L, Snyder R., and University of California, Davis. Dept. of Land, Air, and Water Resources., eds. Proceedings of the IVth International Symposium on Irrigation of Horticultural Crops: Davis, California, USA, September 1-6, 2003. Leuven, Belgium: ISHS, 2004.

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27

Barbaro, Jeffrey R. Simulation of the effects of water withdrawals, wastewater return flows, and land-use change on streamflow in the Blackstone River basin, Massachusetts and Rhode Island. Reston, Va: U.S. Geological Survey, 2007.

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28

Association, Pennsylvania Water Environment. Water residuals and biosolids management--approaching the year 2000: Proceedings : Aug. 3-6, 1997, Philadelphia Marriott, Philadelphia, PA, USA. Alexandria, Va: Water Environment Federation, 1997.

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29

Maryland. Dept. of Natural Resources. Assessment of water quality impacts associated with use of coal combustion products as structural fill at the BBSS site. [Annapolis, Md.]: Maryland Dept. of Natural Resources, 2007.

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30

Bacon, Mark. Water Use Efficiency in Plant Biology. Wiley & Sons, Incorporated, John, 2009.

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31

A, Bacon Mark, ed. Water use efficiency in plant biology. Oxford: Blackwell, 2004.

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32

Grady, Eric N. Alternative Water Use for Power Plant Applications. Nova Science Publishers, Incorporated, 2013.

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33

Connellan, Geoff. Water Use Efficiency for Irrigated Turf and Landscape. CSIRO Publishing, 2013. http://dx.doi.org/10.1071/9780643106888.

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Achieving high water use efficiency in maintaining turf, trees and landscape areas is a core responsibility of open space managers. Water Use Efficiency for Irrigated Turf and Landscape provides a logical and scientifically sound approach to irrigation in urban areas in Australia. It is based on green space delivering defined outcomes using the principles of water sensitive urban design and irrigation efficiency. The book covers all stages of the water pathway – from the source to delivery into the plant root zone. Major topics include system planning, estimating water demand, water quality, irrigation systems, soil management and irrigation performance evaluation. Clearly presented explanations are included, as well as line drawings and worked examples, and a plant water use database covering more than 250 plant species. A Water Management Planning template is included to guide water managers and operators through a process that will deliver a sound plan to achieve sustainable turf, urban trees and landscapes. Best Management Practice Irrigation principles are outlined and their implementation in open space turf and landscape situations is explained. The benefits and limitations of the various methods of delivering water to plants are covered, together with case studies and guidelines for specific horticultural situations. Methodologies to evaluate irrigated sites are included along with recommended benchmark values. The book presents the latest irrigation technology, including developments in water application, control technology and environmental sensors such as weather stations, soil moisture sensors and rain sensors.
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34

B, Kirkham M., ed. Water use in crop production. New York: Food Products Press, 1999.

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35

Gochis, David J. Estimated plant water use and crop coefficients for drip-irrigated hybrid polars. 1998.

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36

Methods for the use of aquatic macrophytes for assessing water quality, 1985-86. London: H.M.S.O., 1987.

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37

1936-, Weeks Edwin P., and United States. Bureau of Reclamation., eds. Water use by saltcedar and by replacement vegetation in the Pecos River floodplain between Acme and Artesia, New Mexico. Washington: U.S. G.P.O., 1987.

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38

Doty, Jean A. Water use of cool season grasses and their effect on grapevine (Vitis vinifera) growth and development. 1988.

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39

María, Iriondo José, Maxted Nigel, and Dulloo Mohammad Ehsan, eds. Conserving plant genetic diversity in protected areas: Population management of crop wild relatives. Wallingford, Oxfordshire, UK: CABI, 2008.

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40

Automated people movers II: New links for land use--automated people mover opportunities for major activity centers : proceedings of the second international conference, Miami, Florida, March 13-15, 1989. New York, N.Y: The Society, 1989.

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41

Conserving Plant Genetic Diversity Prote. Cabi Publishing, 2008.

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42

Reardon, Roderick. Membrane Treatment of Secondary Effluent for Subsequent Use: Phase 2- Pilot Plant Comparisons of Tests of Mf and Uf for Pretreatment of High-pressure Membranes: ... Treatment and Reuse 01-cts-6a (Werf Report). Intl Water Assn, 2008.

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43

Rocher, Vincent, and Sam Azimi, eds. Effectiveness of Disinfecting Wastewater Treatment Plant Discharges. IWA Publishing, 2021. http://dx.doi.org/10.2166/9781789062106.

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Cultural aversion to microbes, healthiness or desire for safe bathing, the applications for water disinfection are varied and the technologies used to achieve this goal are numerous. The authors looked at a simple solution to implement: the use of a reagent called performic acid. Consequently, more than two years of applied research, observations and analyzes were necessary to demonstrate its harmlessness towards the natural environment. The strength of the demonstration lies in the cross-vision of many researchers and scientists from different backgrounds who shared their studies and observations. The strength of this testimony also lies in the diversity of the application cases, including notable and sensitive receiving environments as different as the Seine, the Atlantic Ocean or the Venice lagoon. Through its intentions and results, this work is a step, moving forward the 2030 Agenda for Sustainable Development, particularly SDG 6 “clean water and sanitation” relying on the lever of SDG 17 “partnerships for the goals”. Denis Penouel, Deputy CEO in charge of Prospective
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44

María, Iriondo José, Maxted Nigel, and Dulloo M. Ehsan, eds. Conserving plant genetic diversity in protected areas: Population management of crop wild relatives. Wallingford, Oxfordshire, UK: CABI, 2008.

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45

Australian Soil Fertility Manual. CSIRO Publishing, 2006. http://dx.doi.org/10.1071/9780643100725.

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The Australian Soil Fertility Manual is a trusted guide to the safe use and handling of fertilizers. It describes the types of agricultural soils, how they are classified and the interaction of soil, water and nutrients. It also provides an insight into how plants utilise nutrients and the role that individual nutrients play in the process of plant growth. This edition has been revised to reflect an increased emphasis on the environmental fate of nutrients and appropriate management strategies. It also has additional information on soil physical, chemical, and biological properties and discussions on the use of lime, dolomite and gypsum. New content covers liming effectiveness, nitrogen water use efficiency, regulations for handling and using fertilizers, storage and transport of security sensitive ammonium nitrate, budgeting for profitable nitrogen use and best management practice for nitrogen and phosphorus fertilizers. The chapters on potassium; calcium, magnesium and sulfur; plant nutrients and the environment; and heavy metal in fertilizers and agriculture have all been extensively revised and rewritten. This important work will be an essential text for fertilizer dealers, extension workers, consultants, teachers, farmers, horticulturists, graziers and others concerned with the profitable and environmentally safe use of plant nutrients.
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46

Bond, W. Soil Physical Methods for Estimating Recharge - Part 3. CSIRO Publishing, 1998. http://dx.doi.org/10.1071/9780643105355.

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Measurements in and just below the plant root zone, using principles of soil physics, can be used to estimate recharge. This booklet describes the Zero Flux Plane Method, Methods Based on Darchy's law, and Lysimetry for making such estimates. The work presents the basic concepts of soil water physics that will be referred to in this and other booklets in the series. Another method, the Soil Water Flux Meter, is discussed briefly, but as this is not sufficiently well developed for routine use readers are referred elsewhere for full details. All these methods require that consideration be given to interpolation over time and spatial extrapolation or averaging. A brief discussion of this is given.
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47

Maddaus, Lisa, William Maddaus, and Michelle Maddaus. Preparing Urban Water Use Efficiency Plans. IWA Publishing, 2014. http://dx.doi.org/10.2166/9781780405247.

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48

Water (Planet Under Pressure). Heinemann, 2006.

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49

Guide To Preparing Urban Water Use Efficiency Plans (Water Resources). United Nations Pubns, 2004.

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50

United Nations. Economic and Social Commission for Asia and the Pacific, ed. Guide to preparing urban water-use efficiency plans. New York: United Nations, 2003.

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