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1

Association, American Water Works, ed. Distribution network analysis for water utilities. Denver, CO: American Water Works Association, 1989.

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2

Jakubovics, Nicholas S. Biofilms in the potable water distribution network. [s.l.]: typescript, 1998.

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3

A, Edwards Jerry, and Willnow Lindle D, eds. Computer modeling of water distribution systems. Denver, CO: American Water Works Association, 2012.

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4

Peter, Skipworth, ed. Whole life costing for water distribution network management. London: Thomas Telford, 2002.

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5

Tsuchiya, Sakaru. Technical report on Aitutaki water supply pipeline network analysis, Cook Islands. Port Vila, Vanuatu: United Nations ESCAP Pacific Operations Centre, 1995.

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6

Axworthy, David H. Water distribution network modelling: From steady state to waterhammer. Ottawa: National Library of Canada = Bibliothèque nationale du Canada, 1997.

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7

Cesario, Lee. Modeling, analysis, and design of water distribution systems. Denver, CO: American Water Works Association, 1995.

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8

Kleiner, Yehuda. Water distribution network rehabilitation: Selection and scheduling of pipe rehabilitation alternatives. Ottawa: National Library of Canada = Bibliothèque nationale du Canada, 1997.

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9

Association, American Water Works, ed. Computer modeling of water distribution systems. 2nd ed. Denver, CO: American Water Works Association, 2005.

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10

Bill, Lauer, and American Water Works Association, eds. Water quality in the distribution system. Denver, CO: American Water Works Association, 2005.

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11

Monical, Jim E. A user's guide to the Arkansas Rural Water-Delivery Network Geographic Information System (GIS) software. Little Rock, Ark: U.S. Dept. of the Interior, U.S. Geological Survey, 1992.

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12

Monical, Jim E. A user's guide to the Arkansas Rural Water-Delivery Network Geographic Information System (GIS) software. Little Rock, Ark: U.S. Geological Survey, 1992.

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13

AWWA Seminar on Network Analysis: Treated Water System Planning, Design, and Operation (1989 Dallas, Tex.). Proceedings: AWWA Seminar on Network Analysis, Treated Water System Planning, Design, and Operation, Distribution System Symposium, Dallas, Texas, September 10, 1989. Denver, CO: American Water Works Association, 1990.

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14

Bhave, Pramod R. Analysis of water distribution networks. Oxford, U.K: Alpha Science International, 2006.

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15

Bhave, Pramod R. Optimal design of water distribution networks. Pangbourne, England: Alpha Science International, Ltd., 2003.

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16

Powell, James Charlton. Modelling chlorine in water distribution networks. Birmingham: University of Birmingham, 1998.

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17

Bhave, Pramod R. Analysis of flow in water distribution networks. Lancaster [Pa.]: Technomic Pub. Co., 1991.

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18

Swamee, Prabhata K. Design of water supply pipe networks. Chichester, West Sussex, England: Wiley, 2007.

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19

Kosov, Sergey. Intelligent pressure control and diagnosis of water distribution networks. Leicester: De Montfort University, 1998.

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20

Farley, Malcolm. Losses in water distribution networks: A practitioner's guide to assessment, monitoring and control. London: IWA, 2001.

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21

Jones, Gerard F. Gravity-driven water flow in networks: Theory and design. Hoboken, N.J: Wiley, 2010.

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22

Spirin, Yuriy, Sergey Zotov, Evgeniy Krasnov, and Nadezhda Cvetkova. Polder watercourses: research methods and geoecological assessment. ru: INFRA-M Academic Publishing LLC., 2023. http://dx.doi.org/10.12737/1903343.

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The monograph describes research methods and geoecological assessment of polder lands. The history of research and practical use of surface waters of the Kaliningrad region is characterized, modern problems of their geoecological state are revealed. The characteristic of polder lands as complex natural and economic systems is given, the necessity of geoecological studies of the catchments of small rivers located on them is substantiated. A methodological approach has been developed to assess the geoecological condition of the basins of small watercourses through the combined analysis of hydrological, hydrochemical and geoecological data. Hydrological calculations of the key characteristics of the river flow of small watercourses of polder lands were carried out, the dependencies between them were revealed. Field studies were carried out, hydrochemical data sets were obtained on the rivers of polder lands for four hydrological seasons of 2020-2021. Retrospective hydrochemical information has been processed. The prevailing pollutants, integral indicators of water quality and the main sources of pollution are calculated. Based on the results obtained, a scheme of spatial distribution of pollution of the river network of polder lands is constructed. The geoecological condition of the basins is assessed on the basis of a complex of natural and anthropogenic data; based on the result obtained, recommendations for its improvement are given. It is of interest to specialists in the field of geoecology, hydrology, hydrochemistry, environmental management and environmental protection.
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23

Ikryannikov, Valentin, and Aleksey Barykin. Problems of standardization in the implementation of the provisions of the Technical regulations of the Russian Federation. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/1194152.

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The book provides the results of a study of standardization in the implementation of national technical regulations of the Russian Federation "About fire safety", "On safety of buildings and structures", "On safety of gas distribution networks and gas consumption, On the safety of marine transport", "On safety of inland water transport" and the Technical regulations on tobacco products. The study was the analysis and correlation of the objects and requirements of technical regulations, the approved lists of documents for standardization adopted in 2016-2020 codes of practice, national, intergovernmental, international and regional standards, codes, national standards, the collection of information on enforcement practices and suggestions from industry stakeholders and generalization of the obtained data. According to the results of the study, the key and organizational and methodological problems of standardization in the field of technical regulation are identified, and current directions for improving standardization and national technical regulations are identified. It is of interest to a wide range of specialists in the field of standardization, technical regulation and public administration, and can be used in the preparation of training programs and manuals for bachelor's, master's, additional professional education and MBA programs.
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24

ZnO bao mo zhi bei ji qi guang, dian xing neng yan jiu. Shanghai Shi: Shanghai da xue chu ban she, 2010.

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25

Whole life costing for water distribution network management. London: Thomas Telford, 2002.

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26

Whole Life Costing for Water Distribution Network Management. Thomas Telford Services Ltd, 2003.

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27

M32 Computer Modeling of Water Distribution Systems. American Water Works Association, 2017.

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28

Hailer, Angelika. Verification of Branch and Bound Algorithms applied to Water Distribution Network Design. Logos Verlag Berlin, 2006.

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29

Proceedings: AWWA Seminar on Network Analysis, Treated Water System Planning, Design, and Operation, Distribution System Symposium, Dallas, Texas, September 10, 1989 (AWWA seminar proceedings). American Water Works Association, 1990.

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30

Urban Water Distribution Networks. Elsevier, 2018. http://dx.doi.org/10.1016/c2016-0-03854-8.

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31

Alegre, Helena, and Ivo Pothof. Urban Water Distribution Networks. Excelic Press LLC, 2018.

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32

Advances in Water Distribution Networks. MDPI, 2019. http://dx.doi.org/10.3390/books978-3-03897-557-1.

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33

Analysis of Water Distribution Networks. Alpha Science Int'l Ltd, 2006.

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34

Optimal Design of Water Distribution Networks. Alpha Science International, 2004.

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35

Al-Washali, Taha M. Water Loss Assessment in Distribution Networks. Taylor & Francis Group, 2021.

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36

Sharma, Ashok K., and Prabhata K. Swamee. Design of Water Supply Pipe Networks. Wiley-Interscience, 2008.

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37

Sharma, Ashok K., and Prabhata K. Swamee. Design of Water Supply Pipe Networks. Wiley & Sons, Incorporated, John, 2008.

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38

Mathematical Optimization Of Water Networks. Birkh User, 2012.

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39

Pattern Recognition For Reliability Assessment Of Water Distribution Networks. CRC Press, 2012.

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40

Fragiadakis, Michalis, Symeon Christodoulou, Agathoklis Agathokleous, and Savvas Xanthos. Urban Water Distribution Networks: Assessing Systems Vulnerabilities, Failures, and Risks. Elsevier Science & Technology Books, 2017.

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41

Fragiadakis, Michalis, Symeon Christodoulou, Agathoklis Agathokleous, and Savvas Xanthos. Urban Water Distribution Networks: Assessing Systems Vulnerabilities, Failures, and Risks. Elsevier Science & Technology Books, 2017.

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42

Jones, Gerard F. Gravity-Driven Water Flow in Networks. Wiley & Sons, Incorporated, John, 2011.

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43

Jones, Gerard F. Gravity-Driven Water Flow in Networks: Theory and Design. Wiley & Sons, Incorporated, John, 2011.

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44

Jones, Gerard F. Gravity-Driven Water Flow in Networks: Theory and Design. Wiley & Sons, Incorporated, John, 2011.

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45

Water Loss Assessment in Distribution Networks: Methods, Applications and Implications in Intermittent Supply. Taylor & Francis Group, 2021.

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46

Al-Washali, Taha M. Water Loss Assessment in Distribution Networks: Methods, Applications and Implications in Intermittent Supply. Taylor & Francis Group, 2021.

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47

Al-Washali, Taha M. Water Loss Assessment in Distribution Networks: Methods, Applications and Implications in Intermittent Supply. Taylor & Francis Group, 2021.

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48

Trifunovic, N. Pattern Recognition for Reliability Assessment of Water Distribution Networks: UNESCO-IHE PhD Thesis. Taylor & Francis Group, 2012.

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49

Pattern Recognition for Reliability Assessment of Water Distribution Networks: UNESCO-IHE PhD Thesis. Taylor & Francis Group, 2017.

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50

Trifunovic, N. Pattern Recognition for Reliability Assessment of Water Distribution Networks: UNESCO-IHE PhD Thesis. Taylor & Francis Group, 2012.

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