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This paper presents a chemical variation examination of water samples acquired from 11 Taiwanese rivers to assess the relationships between chemical and physical weathering based on the variations of major dissolved ions. One salient relationship is illustrated by the discovery that huge amount of water discharge is the vital factor associated with the dilution of ion concentrations. The total dissolved solid discharge from the investigated rivers is approximately 10 Mt\u002Fyr, prominently, 60% of the dissolved ions are attributed to the outcrop of silicate. Finally, it is noted that only 4% of the total dissolved solid discharge is observed in the total delivered material in river water, which is practical with the characteristics of weathering mechanism, most of the materials transported into river water undergo little chemical weathering.",{"EN":171},"The Environmental Significance of Chemistry Variations in the Rivers around Taiwan",{"VOID":173},"[\"15456263478548795347\"]",{"VOID":175},"Berner, E.K. and Berner, R.A., The Global Water Cycle: Geochemistry and Environment, New Jersey: Prentice-Hall, 1987, pp. 142–155.\nChen, H., Lin, G.W., Lu, M.H., Shih, T.Y., Horng, M.J., Wu, S.J., and Chuang, B., Effects of topography, lithology, rainfall and earthquake on landslide and sediment discharge in mountain catchments of southeastern Taiwan, Geomorphology, 2011, vol. 133, pp. 132–142.\nChuang, S.C., Chen, H., Lin, G.W., Lin, C.W., and Chang, C.P., Increase in basin sediment yield from landslides in storms following major seismic disturbance, Eng. Geol., 2009, vol. 103, pp. 59–65.\nCWB, Climatological Data Annual Report, Central Weather Bureau, Taipei, Taiwan, 1980–2008. (In Chinese)\nDadson, S.J., Hovius, N., Chen, H., Dade, W.B., Lin, J.C., Hsu, M.L., Lin, C.W., Horng, M.J., Chen, T.C., Milliman, J., and Stark, C.P., Earthquake-triggered increase in sediment delivery from an active mountain belt, Geology, 2004, vol. 32, pp. 733–736.\nFasiska, E.J., Wagenblasht, H., and Dougherty, M.T., The oxidation mechanism of sulphide minerals, Bull. Int. Assoc. Eng. Geol., 1974, vol. 11, pp. 75–82.\nFuller, C.W., Willett, S.D., Hovius, N., and Slingerland, R., Erosion rates for Taiwan mountain basins: new determinations from suspended sediment records and a stochastic model of their temporal variation, The J. Geol., 2003, vol. 11, pp. 71–87.\nGaillardet, J., Dupre’, B., Louvat, P., and Allègrea, C.J., Global silicate weathering and CO2 consumption rates deduced from the chemistry of large rivers, Chem. Geol., 1999, vol. 159, pp. 3–30.\nGordeev, V.V. and Sidorov, I.S., Concentrations of major elements and their outflow into the Laptev Sea by the Lena River, Mar. Chem., 1993, vol. 43, pp. 33–45.\nHo, C.S., An Introduction to the Geology of Taiwan Explanatory Text of the Geologic Map of Taiwan, Central Geological Survey, Ministry of Economic Affairs, Taiwan, 1994. (in Chinese)\nHovius, N., Stark, C.P., Chu, H.T., and Lin, J.C., Supply and removal of sediment in a landslide-dominated mountain belt: Central Range, Taiwan, J. Geol., 2000, vol. 108, pp. 73–89.\nISRM, Rock Characterization Testing & Monitoring, ISRM Suggested Methods, Brown, E.T., Ed., Oxford: Pergamon, 1981.\nLi, Y.H., Denudation of Taiwan island since the Pliocene epoch, Geol., 1976, vol. 4, pp. 105–107.\nLin, G.W., Chen, H., Chen, Y.H., and Horng, M.J., Influence of typhoons and earthquakes on rainfall-induced landslides and suspended sediments discharge, Eng. Geol., 2008, vol. 97, pp. 32–41.\nMeybeck, M. and Helmer, R., The quality of rivers: From pristine stage to global pollution, Global Planet. Change, 1989, vol. 1, pp. 283–309.\nO’Dell, J.W., Pfaff, J.D., Gales, M.E., and Mc-Kee, G.D., The Determination of Inorganic Anions in Water by Ion Chromatography, Method 300.0, USA, Ohio: Environmental Protection Agency, Cincinnati, 1984.\nPinet, P. and Souriau, M., Continental erosion and large-scale relief, Tectonics, 1988, vol. 7, pp. 563–582.\nQin, J., Huh, Y., Edmond, J. M., Du, G., and Ran, J., Chemical and physical weathering in the Min Jiang, a headwater tributary of the Yangtze River, Chem. Geol., 2006, vol. 227, pp. 53–69.\nRasch, P.J., Barth, M.C., Kiehl, J.T., Schwartz, S.E., and Benkovitz, C.M., A description of the global sulfur cycle and its controlling processes in the National Center for Atmospheric Research Community Climate Model, Version 3, J. Geophys. Res., 2000, vol. 105, pp. 1367–1385.\nSakihama, H., Ishiki, M., and Tokuyama, A., Chemical characteristics of precipitation in Okinawa Island Japan, Atmos. Environ., 2008, vol. 42, pp. 2320–2335.\nSmolders, A.J.P., Hudson-Edwards, K.A., Van der Velde, G., and Roelofsa, J.G.M., Controls on water chemistry of the Pilcomayo river, Bolivia, South-America, Appl. Geochem., 2004, vol. 19, pp. 1745–1758.\nStallard, R.F. and Edmond, J.M., Geochemistry of the Amazon 2. The influence of geology and weathering environment on the dissolved-load, J. Geophys. Res., 1983, vol. 88, pp. 9671–9688.\nWRA, Hydrological Yearbook of Taiwan, Water Resources Agency, Ministry of Economic Affairs, Taiwan, 2005–2008. (in Chinese)\nWu, Y., Zhang, Z., Liu, S.M., Zhang, Z.F., Yao, Q.Z., Hong, G.H., and Cooper, L., Sources and distribution of carbon within the Yangtze River system, Estuarine, Coastal Shelf Sci., 2007, vol. 71, pp. 13–25.",{"VOID":177},"10.1134\u002FS0097807819050087","PUBLICATION","VERIFIED","2024-05-16T08:22:07.883+00:00","Auto 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T. 26. Severo-Vostok SSSR (USSR Geohydrology. Vol. 26. Northeastern USSR), Moscow: Nedra, 1972.",{},{"id":22,"text":375,"url":22,"identifiers":376},"Glotov, V.E., Gidrogeologiya osadochnykh basseinov Severo-Vostoka Rossii (Geohydrology of Sedimentary Basins in the Northeastern Russia), Magadan: OOO “Kordis”, 2009.",{},{"id":22,"text":378,"url":22,"identifiers":379},"Glotov, V.E. and Glotova, L.P., Specifics of river recharge by groundwater on the Arctic slope of Chukotka: theoretical and practical aspects, Vestn. SVNTs DVO RAN, 2010, no. 1, pp. 89–98.",{},{"id":22,"text":381,"url":22,"identifiers":382},"Glotov, V.E. and Glotova, L.P., The role of terrain tectonics in the formation of groundwater runoff in the active water exchange zone of mountain river valleys in permafrost zone, Tikhookean. Geol., 2011, vol. 30, no. 5, pp. 93–105.",{},{"id":22,"text":384,"url":22,"identifiers":385},"Glotov, V.E., Glotova, L.P., and Ushakov, M.V., Anomalous changes in the water runoff regime of the Kolyma R. during winter low-water season, Kriosf. Zemli, 2011, vol. 15, no. 1, pp. 52–60.",{},{"id":22,"text":387,"url":22,"identifiers":388},"Kogodovskii, O.A. and Frishter, Yu.I., Gidroenergetika Krainego Severo-Vostoka (Hydropower Engineering in the Extreme Northeast), Moscow: Energoatomizdat, 1996.",{},{"id":22,"text":390,"url":22,"identifiers":391},"Mnogoletnie dannye o rezhime i resursakh poverkhnostnykh vod sushi (Many-Year Data on the Regime and Resources of Continental Surface Waters), vol. 1, Iss. 17, Bassein r. Kolyma i rek Magadanskoi oblasti (The Basin of the Kolyma R. and Rivers of Magadan oblast), Leningrad: Gidrometeoizdat, 1985.",{},{"id":22,"text":393,"url":22,"identifiers":394},"Resursy poverkhnostnykh vod SSSR (USSR Surface Water Resources), vol. 19, Severo-Vostok (North-East Part), Kupriyanov, V.V., Ed., Leningrad: Gidrometeoizdat, 1969.",{},{"id":396,"createTime":397,"updateTime":398,"relativeEntities":399,"slug":400,"properties":401,"entityType":178,"verifyStatus":179,"verifyTime":410,"verifyNote":181,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":411,"fullTextUrl":22,"authors":412,"publicationType":200,"publisherRelationship":441,"citationCount":489,"citationInfo":490,"publishDate":493,"publishYear":491,"citationAnalyzeStatus":494,"lastCitationAnalyze":398,"indexDatabases":495,"openAccess":22,"references":496,"isForceReanalyzing":254},"f8bd159d-fbd4-4ab7-800d-87dbfb615c6f","2024-02-12T12:19:29.781+00:00","2026-07-26T00:03:13.299+00:00",[],"Submarine-discharge-into-the-seas-of-the-Arctic-Ocean-from-the-European-Russia-territory",{"abstract":402,"title":404,"gsPaper":406,"doi":408},{"EN":403},"Groundwater formation conditions in the upper hydrodynamic zone of the northern coast of European Russia are considered. This groundwater discharges directly into the Barents and White seas. The values of submarine discharge from European Russia into arctic seas, bypassing river network, are estimated. Estimates of subsurface dissolved-solids discharge are given. Specific and integral characteristics of submarine discharge are analyzed. The major regularities in the formation and distribution of submarine discharge into seas of the Arctic Ocean are described.",{"EN":405},"Submarine discharge into the seas of the Arctic Ocean from the European Russia territory",{"VOID":407},"[\"14213070410759462680\"]",{"VOID":409},"10.1134\u002FS0097807810060011","2024-04-29T06:12:12.390+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS0097807810060011",[413,428],{"id":414,"sortIndex":23,"researcher":22,"roles":415,"affiliations":416,"properties":425,"displayName":427,"givenName":22,"familyName":22},"6143165e-7429-489f-b3fb-3c7c1cd0daae",[187],[417],{"id":418,"sortIndex":23,"affiliation":419,"properties":22},"1936457b-2795-4ea4-824c-291d40f74543",{"id":418,"createTime":22,"updateTime":22,"relativeEntities":420,"slug":22,"properties":421,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":424,"statistic":22},[],{"title":422},{"EN":423},"Water Problems Institute, Russian Academy of Sciences, Moscow, Russia",[],{"title":426},{"VI":427},"I. S. Zektser",{"id":429,"sortIndex":290,"researcher":22,"roles":430,"affiliations":431,"properties":438,"displayName":440,"givenName":22,"familyName":22},"c992cabd-a8f4-4911-8040-333926992bb3",[187],[432],{"id":418,"sortIndex":23,"affiliation":433,"properties":22},{"id":418,"createTime":22,"updateTime":22,"relativeEntities":434,"slug":22,"properties":435,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":437,"statistic":22},[],{"title":436},{"EN":423},[],{"title":439},{"VI":440},"A. V. Dzyuba",{"url":411,"publisher":442,"properties":484},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":443,"slug":10,"properties":444,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":448,"manageAffiliations":453,"indexDatabases":464,"url":22,"thumbnailPath":22,"statistic":479,"gsStatistic":22,"type":156,"analyzePriority":22},[],{"issn":445,"title":446,"eissn":447},{"VOID":15},{"EN":17},{"VOID":13},[449],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":450,"label":451,"description":452,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},[454,459],{"id":33,"createTime":22,"updateTime":22,"relativeEntities":455,"slug":22,"properties":456,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":458,"statistic":22},[],{"title":457},{"EN":37},[],{"id":40,"createTime":22,"updateTime":22,"relativeEntities":460,"slug":22,"properties":461,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":463,"statistic":22},[],{"title":462},{"EN":44},[],[465,472],{"id":48,"indexDatabase":466,"url":59,"indexYears":60,"academicFieldIds":471,"indexDatabaseRanking":63},{"id":50,"createTime":22,"updateTime":22,"relativeEntities":467,"label":468,"description":469,"key":56,"publicationTags":470,"standard":22},[],{"EN":53,"VI":53},{"EN":53,"VI":55},[58],[62],{"id":65,"indexDatabase":473,"url":78,"indexYears":22,"academicFieldIds":478,"indexDatabaseRanking":22},{"id":67,"createTime":22,"updateTime":22,"relativeEntities":474,"label":475,"description":476,"key":74,"publicationTags":477,"standard":22},[],{"EN":70,"VI":70},{"EN":72,"VI":73},[76,77],[80],{"impactFactor":23,"impactFactorByYear":480,"i10Index":93,"i10IndexLast5Year":94,"totalPublication":95,"totalPublicationByYear":481,"totalCitation":118,"totalCitationByYear":482,"totalCitationPerPublication":135,"totalCitationPerPublicationByYear":483,"hindexLast5Year":155,"hindex":155},{"2012":83,"2013":84,"2014":85,"2015":86,"2016":87,"2017":88,"2018":89,"2019":90,"2020":91,"2021":92,"2022":89,"2023":85},{"2000":97,"2001":98,"2002":99,"2003":100,"2004":100,"2005":101,"2006":102,"2007":103,"2008":104,"2009":105,"2010":106,"2011":107,"2012":108,"2013":109,"2014":102,"2015":110,"2016":111,"2017":107,"2018":112,"2019":113,"2020":114,"2021":114,"2022":115,"2023":116,"2024":117},{"2003":120,"2004":121,"2005":122,"2006":123,"2007":124,"2008":107,"2009":125,"2010":105,"2011":126,"2012":124,"2013":127,"2014":128,"2015":126,"2016":129,"2017":130,"2018":116,"2019":105,"2020":131,"2021":132,"2022":133,"2023":134},{"2003":137,"2004":138,"2005":139,"2006":140,"2007":141,"2008":142,"2009":143,"2010":144,"2011":145,"2012":146,"2013":147,"2014":148,"2015":149,"2016":150,"2017":151,"2018":141,"2019":152,"2020":153,"2021":91,"2022":139,"2023":154},{"pages":485,"volume":487},{"VOID":486},"745-751",{"VOID":488},"37",4,{"total":489,"publishYear":491,"statisticByYear":492},2010,{"2013":304,"2016":290,"2020":290},"2010-11-19","DONE_ANALYZE_CITATION",[63,76],[497,500,503,506,509,512,515,518,521,524,527,530,536,539],{"id":22,"text":498,"url":22,"identifiers":499},"Gipsometricheskaya karta Evropeiskoi chasti SSSR (masshtab 1: 1500000) (Hypsometric Map of European Part of the USSR: Scale 1: 1500000), Moscow: GUGK, 1941.",{},{"id":22,"text":501,"url":22,"identifiers":502},"Dzhamalov, R.G., Zektser, I.S., and Meskheteli, A.V., Podzemnyi stok v morya i Mirovoi okean (Groundwater Flow to the Seas and the World Ocean), Moscow: Nauka, 1977.",{},{"id":22,"text":504,"url":22,"identifiers":505},"Dzhamalov, R.G., Zektser, I.S., and Semendyaev, L.I., Identification of Zones of Groundwater Discharge in Seas, Vodn. Resur., 1976, no. 2, pp. 101–109.",{},{"id":22,"text":507,"url":22,"identifiers":508},"Zektser, I.S., Podzemnye vody kak komponent okruzhayushchei sredy (Groundwater as an Environmental Component), Moscow: Nauch. mir, 2001.",{},{"id":22,"text":510,"url":22,"identifiers":511},"Zektser, I.S., Dzhamalov, R.G., and Meskheteli, A.V., Podzemnyi vodoobmen sushi i morya (Subsurface Water Exchange between the Continent and the Sea), Moscow: Gidrometeoizdat, 1984.",{},{"id":22,"text":513,"url":22,"identifiers":514},"Zverev, V.P., Voda v Zemle (Water in the Earth), Moscow: Nauch. mir, 2009.",{},{"id":22,"text":516,"url":22,"identifiers":517},"Karta podzemnogo stoka Tsentral’noi i Vostochnoi Evropy. (masshtab 1: 1500000) (Map of Groundwater Runoff in the Central and Eastern Europe: Scale 1: 1500000), Moscow: GUGK, 1983.",{},{"id":22,"text":519,"url":22,"identifiers":520},"Mirovoi vodnyi balans i vodnye resursy Zemli (World Water Balance and Water Resources of the Earth), Leningrad: Gidrometeoizdat, 1974.",{},{"id":22,"text":522,"url":22,"identifiers":523},"Podzemnye vody Mira: resursy, ispol’zovanie, prognozy (World Groundwater: Resources, Use, and Forecasts) Zektser, I.S., Ed., Moscow: Nauka, 2007.",{},{"id":22,"text":525,"url":22,"identifiers":526},"Podzemnyi stok na territorii SSSR (Groundwater Runoff in the Territory of the USSR) Kudelin, B.I., Ed., Moscow: Mosk. Gos. Univ., 1966.",{},{"id":22,"text":528,"url":22,"identifiers":529},"Podzemnyi stok Tsentral’noi i Vostochnoi Evropy (Groundwater Runoff of the Central and Eastern Europe), Moscow: VSEGINGEO, 1982.",{},{"id":531,"text":532,"url":533,"identifiers":534},"4c68646b-0035-4279-8000-0006b275d4fa","Garrels, R.M., and Mackenzie, F. T., Evolution of Sedimentary Rocks, N. Y., 1971.","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10440-022-00541-7",{"doi":535},"10.1007\u002Fs10440-022-00541-7",{"id":22,"text":537,"url":22,"identifiers":538},"Nace, R., World Hydrology Status and Prospects, Proc. IASH-UNESCO-WHO Symp. on World Water Balance: Reading, Louvain: AIHS, 1970, vol. 1, Publ. 92, pp. 1–10.",{},{"id":22,"text":540,"url":22,"identifiers":541},"Zektser, I. and Dzhamalov, R., Submarine Groundwater, London; N.Y.: CRC Press, 2007.",{},{"id":543,"createTime":544,"updateTime":545,"relativeEntities":546,"slug":547,"properties":548,"entityType":178,"verifyStatus":179,"verifyTime":559,"verifyNote":181,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":560,"fullTextUrl":22,"authors":561,"publicationType":200,"publisherRelationship":631,"citationCount":678,"citationInfo":679,"publishDate":682,"publishYear":250,"citationAnalyzeStatus":494,"lastCitationAnalyze":683,"indexDatabases":684,"openAccess":22,"references":22,"isForceReanalyzing":254},"2e696b52-1f24-44f6-813c-65a5f6086864","2024-01-09T17:17:15.606+00:00","2026-07-24T20:18:02.713+00:00",[],"Grey-Water-Footprint-Assessment-from-the-Perspective-of-Water-Pollution-Sources-A-Case-Study-of-China",{"abstract":549,"title":551,"gsPaper":553,"references":555,"doi":557},{"EN":550},"With the acceleration of industrialization and urbanization, the water crisis is becoming more severe and may threaten the future of sustainable development. Assessing grey water footprint (GWF) is a useful step in the prevention and control of water pollution. Conventional studies have only considered agricultural pollutants in their calculations of GWF, ignoring the roles of industrial and household wastewater. Therefore, this study calculates GWFs for the agricultural, industrial, and household sectors in 31 provinces in China from 1998 to 2012. It further analyzes spatial and temporal variations in China’s GWF. The results show that total GWF (TGWF) was relatively high from 1998 to 2002, then increased steadily and peaked in 2006, and dramatically decreased after 2006. Overall, TGWF slightly decreased over the study period. 31 Provinces were divided into five grades of TGWF: very high, high, medium, low, and very low. The provinces with high or very high TGWF, such as Hebei, Shandong, Henan, Jiangsu, Hubei, Hunan, Sichuan, Guangdong, and Guangxi, were primarily located in southeastern and southwestern China. Therefore, efforts to reduce GWF should focus on these regions. Our comparative study also provides a means of understanding how key contributors to GWF vary across the five regions. It offers a basis for the short-term and long-term development policies aimed at decreasing GWF in specific locations.",{"EN":552},"Grey Water Footprint Assessment from the Perspective of Water Pollution Sources: A Case Study of China",{"VOID":554},"[\"4746961851980440384\"]",{"VOID":556},"Aldaya, M.M., Chapagain, A.K., Hoekstra, A.Y., and Mekonnen, M.M., The Water Footprint Assessment Manual: Setting the Global Standard, Routledge, 2012.\nAldaya, M.M., Martínez-Santos, P., and Llamas, M.R., Incorporating the water footprint and virtual water into policy: Reflections from the Mancha Occidental Region, Spain, Water Resour. Manag., 2010, vol. 24, pp. 941–958.\nAzevedo, L.G.T.D., Gates, T.K., Fontane, D.G., Labadie, J.W., and Porto, R.L., Integration of water quantity and quality in strategic river basin planning, J. Water Resour. Plann. Manag., 2000, vol. 126, pp. 85–97.\nBulsink, F., Hoekstra, A., and Booij, M., The water footprint of Indonesian provinces related to the consumption of crop products, Hydrol. Earth Syst. Sci., 2010, vol. 14, pp. 119–128.\nCao, X., Wu, P., Wang, Y., and Zhao, X., Assessing blue and green water utilisation in wheat production of China from the perspectives of water footprint and total water use, Hydrol. Earth Syst. Sci., 2014, vol. 18, pp. 3165–3178.\nChapagain, A., Hoekstra, A., Savenije, H., and Gautam, R., The water footprint of cotton consumption: An assessment of the impact of worldwide consumption of cotton products on the water resources in the cotton producing countries, Ecol. Econ., 2006, vol. 60, pp. 186–203.\nCheng, H., Hu, Y., and Zhao, J., Meeting China’s water shortage crisis: current practices and challenges, Environ. Sci. Technol., 2009, vol. 43, pp. 240–244.\nCinner, J.E., McClanahan, T., Graham, N., Daw, T., Maina, J., Stead, S., Wamukota, A., Brown, K., and Bodin, Ö., Vulnerability of coastal communities to key impacts of climate change on coral reef fisheries, Global Environ. Change, 2012, vol. 22, pp. 12–20.\nDeng, X., Xie, S., Cui, T., LI, Y., and Li, H., Research of the water footprint of cotton consumption and its effect on ecological environment in southern of Xinjiang, Res. Soil Water Conserv. (China), 2009, vol. 16, pp. 176–180.\nDong, H., Geng, Y., Fujita, T., Fujii, M., Hao, D., and Yu, X., Uncovering regional disparity of China’s water footprint and inter-provincial virtual water flows, Sci. Total Environ., 2014, vol. 500, pp. 120–130.\nDong, H., Geng, Y., Sarkis, J., Fujita, T., Okadera, T., and Xue, B., Regional water footprint evaluation in China: a case of Liaoning, Sci. Total Environ., 2013, vol. 442, pp. 215–224.\nEne, S.A., Teodosiu, C., Robu, B., and Volf, I., Water footprint assessment in the winemaking industry: a case study for a Romanian medium size production plant, J. Cleaner Prod., 2013, vol. 43, pp. 122–135.\nErcin, A.E., Aldaya, M.M., and Hoekstra, A.Y., Corporate water footprint accounting and impact assessment: the case of the water footprint of a sugar-containing carbonated beverage, Water Resour. Manag., 2011, vol. 25, pp. 721–741.\nErcin, A.E. and Hoekstra, A.Y., Water footprint scenarios for 2050: A global analysis, Environ. Int., 2014, vol. 64, pp. 71–82.\nGai, L., Xie, G., Li, S., Zhang, C., and Cheng, L., A study on production water footprint of winter-wheat and maize in the north China plain, Resour. Sci. (China), 2010, vol. 32, pp. 2066–2071.\nGeng, Y., Mitchell, B., Tsuyoshi, F., and Nakayama, T., Perspectives on small watershed management in China: the case of Biliu, Int. J. Sust. Dev. World., 2010, vol. 17, pp. 172–179.\nGuan, D. and Hubacek, K., Assessment of regional trade and virtual water flows in China, Ecol. Econ., 2007, vol. 61, pp. 159–170.\nGuan, D. and Hubacek, K., A new and integrated hydro-economic accounting and analytical framework for water resources: A case study for North China, J. Environ. Manag., 2008, vol. 88, pp. 1300–1313.\nHeffer, P., Assessment of fertilizer use by crop at the global level, International Fertilizer Industry Association (IFA), Paris, 2013, vol. 28.\nHesse, C., Krysanova, V., Päzolt, J., and Hattermann, F.F., Eco-hydrological modelling in a highly regulated lowland catchment to find measures for improving water quality, Ecol. Modell., 2008, vol. 218, pp. 135–148.\nHoekstra, A.Y., Water neutral: reducing and ofsetting water footprints, UNESCO-IHE Institute for Water Education, Netherlands, 2008.\nHoekstra, A.Y. and Chapagain, A.K., Globalization of water: Sharing the Planet’s Freshwater Resources, John Wiley & Sons, 2011.\nKhan, S., Hanjra, M.A., and Mu, J., Water management and crop production for food security in China: a review, Agric. Water Manag., 2009, vol. 96, pp. 349–360.\nLamastra, L., Suciu, N.A., Novelli, E., and Trevisan, M., A new approach to assessing the water footprint of wine: An Italian case study, Sci. Total Environ., 2014, vol. 490, pp. 748–756.\nLi, F., and Dong, S., Pollution from livestock and poultry and its resource strategy in west China, Resour. Sci. (China), 2011, vol. 33, pp. 2204–2211.\nLi, X., Jia, X., and Huang, T., Fuzzy mathematics method for water environmental quality assessment in arid area, J. Arid. Land Resour. Environ., 2004, vol. 18, pp. 163–167.\nLiu, C., Kroeze, C., Hoekstra, A.Y., and Gerbens-Leenes, W., Past and future trends in grey water footprints of anthropogenic nitrogen and phosphorus inputs to major world rivers, Ecol. Indic., 2012, vol. 18, pp. 42–49.\nLiu, S., Lou, S., Kuang, C., Huang, W., Chen, W., Zhang, J., and Zhong, G., Water quality assessment by pollution-index method in the coastal waters of Hebei Province in western Bohai Sea, China, Mar. Pollut. Bull., 2011, vol. 62, pp. 2220–2229.\nMekonnen, M.M., and Hoekstra, A.Y., The green, blue and grey water footprint of crops and derived crop products, Hydrol. Earth Syst. 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Manage., 2013, vol. 27, pp. 5223–5243.\nState Council, Water permits and water fee collection regulations (assessed 24-01-06) http:\u002F\u002Fwww.chinagrain.gov.cn\u002Fn16\u002Fn1077\u002Fn313349\u002F2215678.html, 2006.\nVanham, D., Mekonnen, M., and Hoekstra, A., The water footprint of the EU for different diets, Ecol. Indic., 2013, vol. 32, pp. 1–8.\nWallenstein, S., Zucker, C.L., and Fleiss, J.L., Some statistical methods useful in circulation research, Circ. Res., 1980, vol. 47, pp. 1–9.\nWang, X., Liu, C., and Zhang, Y., Water quantity\u002Fquality combined evaluation method for rivers’ water requirements of the instream environmental flow in dualistic water cycle: a case study of Liaohe iver basin, Acta. Geogr. Sin., 2006, vol. 61, pp. 1132–1140.\nWang, Y., Wu, P., Engel, B., and Sun, S., Application of water footprint combined with a unified virtual crop pattern to evaluate crop water productivity in grain production in China, Sci. 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Resour., 2013, vol. 28, pp. 1169–1178.\nZhi, Y., Yang, Z., Yin, X., Hamilton, P.B., and Zhang, L., Using gray water footprint to verify economic sectors’ consumption of assimilative capacity in a river basin: model and a case study in the Haihe River Basin, China, J. Cleaner Prod., 2014, vol. 92, pp. 267–273.",{"VOID":558},"10.1134\u002FS0097807819030187","2024-08-30T15:28:53.969+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS0097807819030187",[562,579,601,616],{"id":563,"sortIndex":23,"researcher":22,"roles":564,"affiliations":565,"properties":574,"displayName":576,"givenName":22,"familyName":22},"e739de90-ddc5-4d57-a336-0b20f2daf0b9",[187],[566],{"id":567,"sortIndex":23,"affiliation":568,"properties":22},"89807541-f4ab-4d41-99ac-c12e0f701fe0",{"id":567,"createTime":22,"updateTime":22,"relativeEntities":569,"slug":22,"properties":570,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":573,"statistic":22},[],{"title":571},{"VI":572},"School of Urban and Regional Science, East China Normal University, Shanghai, China",[],{"title":575,"gsAuthor":577},{"VI":576},"Xionghe 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the first time, summarized data on the production of nine species and ten hybrids of pondweed (Potamogeton, Stuckenia, Potamogetonaceae) are given for ecosystems of small and medium rivers in the north of European Russia. The pondweed is shown to be an important producer of primary organic matter. A significant contribution to primary production in rivers in the region is due to large-size pondweeds and their hybrids, which form dense monodominant stands: P. lucens, P. natans, P. perfoliatus, P. × angustifolius, P. × nitens, P. × salicifolius, P. × sparganiifolius. The production characteristics for the widespread species (P. lucens, P. natans, P. perfoliatus) in the rivers of the region are more than 1.5 times greater than those in reservoirs. Most pondweed species and hybrids show medium productivity and produce \u003C1 kg\u002Fm2 organic matter per year, and only P. lucens, P. × vepsicus, S. × fennicа are classifed as having a high productivity.",{"EN":695},"Production of Pondweeds (Potamogeton, Stuckenia, Potamogetonaceae) in Rivers in the North of European Russia",{"VOID":697},"[\"14651695719885627875\"]",{"VOID":699},"10.1134\u002FS0097807820010194","2024-05-04T03:41:01.419+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS0097807820010194",[703,718],{"id":704,"sortIndex":23,"researcher":22,"roles":705,"affiliations":706,"properties":715,"displayName":717,"givenName":22,"familyName":22},"ae6f8aad-b5a2-4618-b9de-ecaad5ca0cde",[187],[707],{"id":708,"sortIndex":23,"affiliation":709,"properties":22},"8908a865-08d2-400b-88e0-64ef4a4bcde7",{"id":708,"createTime":22,"updateTime":22,"relativeEntities":710,"slug":22,"properties":711,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":714,"statistic":22},[],{"title":712},{"VI":713},"Papanin Institute for Biology of Inland Waters, Russian Academy of Sciences, Borok, Russia",[],{"title":716},{"VI":717},"E. 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Accessed September 5, 2018.","http:\u002F\u002Fwww.agroatlas.ru",{},{"id":22,"text":790,"url":22,"identifiers":791},"Bobrov, A.A. and Chemeris, E.V., Notes on river pondweeds (Potamogeton, Potamogetonaceae) of the Upper Volga region , Novosti Sistemat. Vyssh. Rastenii, 2006, vol. 38, pp. 23–65.",{},{"id":22,"text":793,"url":22,"identifiers":794},"Bobrov, A.A. and Chemeris, E.V., Vegetation cover of small south taiga river and its changing under regulated flow (on the example of the river Kueksha, Kostroma region), Tr. KarNTs RAN, Biogeograf., 2012, no. 1, pp. 33–47.",{},{"id":796,"text":797,"url":798,"identifiers":799},"e78e08ce-3293-415e-85c7-adcef531eb95","Bobrov, A.A. and Chemeris, E.V., Pondweeds (Potamogeton, Potamogetonaceae) in river ecosystems in the north of European Russia, Dokl. Biol. Sci., 2009, vol. 425, no. 1, pp. 167–170.","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS0012496609020240",{"doi":800},"10.1134\u002FS0012496609020240",{"id":22,"text":802,"url":22,"identifiers":803},"Bobrov, A.A. and Chemeris, E.V., River vegetation in the north of European Russia: preliminary results, Ekosistemy malykh rek: bioraznoobrazie, ekologiya, okhrana: Lektsii i materialy dokl. Vseros. shk.-konf (Ecosystems of Small Rivers: Biodiversity, Ecology, Protection: Lectures and Materials of Reports, Russ. School-Conf.), Borok: Printkhaus, 2008, pp. 76–79.",{},{"id":22,"text":805,"url":22,"identifiers":806},"Bobrov, A.A. and Chemeris, E.V., Potamogeton × vepsicus (Potamogetonaceae)—a new hybrid pondweed from the Upper Volga region, Bot. Zh., 2006, vol. 91, no. 1, pp. 71–84.",{},{"id":22,"text":808,"url":22,"identifiers":809},"Borutskii, E.V., Materials on macrophyte biomass dynamics in lakes, in Tr. Vsesoyuz. gidrobiol. obshch. (Trans. USSR Hydrobiol. Soc.), Leningrad, 1950, vol. 2, pp. 43–68.",{},{"id":22,"text":811,"url":22,"identifiers":812},"Vodnye resursy Rossii i ikh ispol’zovanie (Water Re-s-ources of Russia and Their Use), Shiklomanov, I.A., Ed., St. Petersburg: GGI, 2008.",{},{"id":22,"text":814,"url":22,"identifiers":815},"Gaevskaya, N.S., Rol’ vysshikh vodnykh rastenii v pitanii zhivotnykh presnykh vodoemov (The Role of Higher Aquatic Plants in the Feeding of Animals in Freshwater Bodies), Moscow: Nauka, 1966.",{},{"id":22,"text":817,"url":22,"identifiers":818},"Generozov, V.Ya., Kul’tura kormovykh i zashchitnykh rastenii dlya vodoplavayushchei dichi (Culture of Food and Protection Plants for Waterfowl), Moscow: Vsesoyuz. kooperativ. ob’’edinen. izd., 1934.",{},{"id":22,"text":820,"url":22,"identifiers":821},"Greze, I.I., Hydrobiology of the lower reaches of the Angara, in Tr. Vsesoyuz. gidrobiol. obshch. (Trans. USSR Hydrobiol. Soc.), Moscow: Akad. Nauk SSSR, 1953, vol. 5, pp. 203–223.",{},{"id":22,"text":823,"url":22,"identifiers":824},"Dovbnya, I.V., Higher aquatic plants in lakes of the Upper Volga region, Biol. Vnutr. Vod. Inform. Byul., 1984, no. 63, pp. 50–53.",{},{"id":22,"text":826,"url":22,"identifiers":827},"Dovbnya, I.V., Production of higher aquatic plants in the Volga reservoirs, in Presnovodnye gidrobionty i ikh biologiya: Tr. IBVV AN SSSR (Freshwater Organisms and Their Biology: Trans. Inst. Biol. Vnutr. Vod, AN SSSR), Leningrad: Nauka, 1983, No. 48(51), pp. 71–84.",{},{"id":22,"text":829,"url":22,"identifiers":830},"Dovbnya, I.V., Phytomass of hydrophilic vegetation of Volga reservoirs, in Flora i rastitel’nost’ vodoemov basseina Verkhnei Volgi (Flora and Vegetation of Water Bodies in the Upper Volga Basin). Rybinsk, 1979, pp. 140–154.",{},{"id":22,"text":832,"url":22,"identifiers":833},"Dovbnya, I.V. and Ekzertsev, V.A., Production of shallow-water plants of the Ivankovo Reservoir and its changes in the recent decade, Biol. Vnutr. Vod: Inform. Byul., 1979, no. 41, pp. 35–39.",{},{"id":22,"text":835,"url":22,"identifiers":836},"Zarubina, E.Yu., Floristic diversity, overgrowing features, and production of phytocoenoses in Kara-Chumysh Reservoir, Kemerovo oblast, Usp. Sovrem. Estestvozn., 2014, no. 12, pp. 209–215.",{},{"id":22,"text":838,"url":22,"identifiers":839},"Zimbalevskaya, L.N., Fitofil’nye bespozvonochnye ravninnykh rek i vodokhranilishch (ekologicheskii ocherk) (Phytophilous Invertebrates of Lowland Rivers and Reservoirs (An Ecological Review)), Kiev: Nauk. dumka, 1981.",{},{"id":22,"text":841,"url":22,"identifiers":842},"Zotina, T.A., Phytomass and species diversity of macrophyte vegetation in the middle Yenisei river , Zhurn. Sib. Fed. Univ. Biol., 2014, vol. 7, no. 1, pp. 73–86.",{},{"id":22,"text":844,"url":22,"identifiers":845},"Katanskaya, V.M., Vysshaya vodnaya rastitel’nost' kontinental’nykh vodoemov SSSR. Metody izucheniya (Higher Aquatic Plants in USSR Continental Water Bodies), Leningrad: Nauka, 1981.",{},{"id":22,"text":847,"url":22,"identifiers":848},"Katanskaya, V.M., Seasonal development of aquatic plants in lakes of Karelian Isthmus, in Ozera tsentral’noi chasti Karel’skogo peresheika. Limnologiya i metodika issledovanii: Tr. laboratorii ozerovedeniya (Lakes of the Central Karelian Isthmus. Limnology and Methods of Studies), Leningrad: Akad. Nauk SSSR, 1960, vol. 11, pp. 115–150.",{},{"id":22,"text":850,"url":22,"identifiers":851},"Katanskaya, V.M. and Raspopov, I.M., Methods for studying higher aquatic plants, in Rukovodstvo po metodam gidrobiologicheskogo analiza poverkhnostnykh vod i donnykh otlozhenii (Guide for Methods of Hydrobiological Analysis of Surface Water and Bottom Sediments), Leningrad: Gidrometeoizdat, 1983, pp. 129–176.",{},{"id":22,"text":853,"url":22,"identifiers":854},"Komulainen, S.F., Ekologiya fitoperifitona malykh rek Vostochnoi Fennoskandii (Phytoperiphyton Ecology in Small Rivers of the Eastern Fennoscandia), Petrozavodsk: Kar. Nauch. Ts., Ross. Akad. Nauk, 2004.",{},{"id":22,"text":856,"url":22,"identifiers":857},"Makarevich, T.A., Periphyton contribution to the total primary production of freshwater ecosystems: a review, Vestn. Tyum.Gos. 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Vod, 2003, no. 1, pp. 40–48.",{},{"id":22,"text":872,"url":22,"identifiers":873},"Papchenkov, V.G., Rastitel’nyi pokrov vodoemov i vodotokov Srednego Povolzh’ya (Vegetation Cover of Water Bodies and Streams in the Middle Volga Region), Yaroslavl: TsMP MUBiNT, 2001.",{},{"id":531,"text":875,"url":533,"identifiers":876},"Papchenkov, V.G., The degree of overgrowing of the Rybinsk Reservoir and productivity of its vegetation cover, Inland Water Biol., 2013, no. 1, pp. 18–25.",{"doi":535},{"id":878,"text":879,"url":880,"identifiers":881},"79a9c012-f64f-4713-bb71-a59c6aba203e","Poddubnyi, S.A., Papchenkov, V.G., Chemeris, E.V., and Bobrov, A.A., Overgrowing of protected shallow waters in the Upper Volga reservoirs in relation to their morphometry, Inland Water Biol., 2017, no. 1, pp. 64–72.","http:\u002F\u002Flink.springer.com\u002F10.1134\u002FS199508291701014X",{"doi":882},"10.1134\u002FS199508291701014X",{"id":22,"text":884,"url":22,"identifiers":885},"Raspopov, I.M., Vysshaya vodnaya rastitel’nost' bol’shikh ozer Severo-Zapada SSSR (Higher Aquatic Plants in Large Lakes in the Northwest of the USSR), Leningrad: Nauka, 1985.",{},{"id":22,"text":887,"url":22,"identifiers":888},"Rastitel'nye resursy Rossii: Dikorastushchie tsvetkovye rasteniya, ikh komponentnyi sostav i biologicheskaya aktivnost’ (Plant Resources of Russia: Wild Flowering Plants, Their Component Composition and Biological Activity), vol. 6. 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Byul., 1973, no. 18, pp. 24–28.",{},{"id":22,"text":908,"url":22,"identifiers":909},"Bakker, E.S., Wood, K.A., Pages, J.F., Veen, G.F., Christianen, M.J.A., Santamaría, L., Nolet, B.A., and Hilt, S., Herbivory on freshwater and marine macrophytes: A review and perspective, Aquat. Bot., 2016, vol. 135, pp. 18–36.",{},{"id":22,"text":911,"url":22,"identifiers":912},"Bobrov, A.A., Potamogeton × fennicus (P. filiformis × P. vaginatus, Potamogetonaceae) in East Europe, Komarovia, 2007, vol. 5, no. 1, pp. 1–23.",{},{"id":22,"text":914,"url":22,"identifiers":915},"Bobrov, A.A. and Sinjushin, A.A., Morphological and molecular confirmation of the hybrid Potamogeton × salicifolius (P. lucens × P. perfoliatus, Potamogetonaceae) in Upper Volga region (Russia), Komarovia, 2008, vol. 6, no. 2, pp. 71–79.",{},{"id":22,"text":917,"url":22,"identifiers":918},"Bobrov, A.A., Zalewska-Galosz, J., and Chemeris, E.V., Potamogeton × clandestinus (P. crispus × P. natans, Potamogetonaceae), a new natural pondweed hybrid discovered in Europe, Phytotaxa, 2013, vol. 149, no. 1, pp. 31–49.",{},{"id":22,"text":920,"url":921,"identifiers":922},"Dateandtime.info 2011—2017. http:\u002F\u002Fdateandtime.info\u002Fru\u002F. Accessed October 10, 2017.","http:\u002F\u002Fdateandtime.info\u002Fru\u002F",{},{"id":22,"text":924,"url":22,"identifiers":925},"Fischer, S.G. and Carpenter, S.R., Ecosystem and macrophyte primary production of the Fort River, Massachusetts, Hydrobiologia, 1976, vol. 49, no. 2, pp. 175–187.",{},{"id":22,"text":927,"url":22,"identifiers":928},"Haslam, S.M., River Plants. 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Publ., 1975, pp. 106–128.",{},{"id":960,"text":961,"url":962,"identifiers":963},"06609440-bbdc-4e84-9ca1-9968883a23c7","Wood, K.A., Stillman, R.A., Clarke, R.T., Daunt, F., and O’Hare, M.T., Measuring submerged macrophyte standing crop in shallow rivers: a test of methodology, Aquat. Bot., 2012, vol. 102, pp. 28–33.","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS030437701200068X",{"doi":964},"10.1016\u002Fj.aquabot.2012.04.006",{"id":531,"text":966,"url":533,"identifiers":967},"Zotina, T.A., The biomass of macrophytes at several sites of the upper reaches of the Yenisei River, J. Sib. Fed. Univ.,Biol., 2008, vol. 1, pp. 102–108.",{"doi":535},{"id":969,"createTime":970,"updateTime":971,"relativeEntities":972,"slug":973,"properties":974,"entityType":178,"verifyStatus":179,"verifyTime":985,"verifyNote":181,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":986,"fullTextUrl":22,"authors":987,"publicationType":200,"publisherRelationship":1044,"citationCount":23,"citationInfo":1092,"publishDate":1095,"publishYear":1093,"citationAnalyzeStatus":494,"lastCitationAnalyze":1096,"indexDatabases":1097,"openAccess":22,"references":22,"isForceReanalyzing":254},"78eb4c7f-4ce5-4b80-811f-242c9498d0f0","2023-12-08T08:56:13.173+00:00","2026-07-20T17:16:02.823+00:00",[],"Survival-rate-of-pathogenic-bacteria-and-viruses-in-groundwater",{"abstract":975,"title":977,"gsPaper":979,"references":981,"doi":983},{"EN":976},"The results of an analytical review of publications on the process of inactivation of pathogenic microorganisms in groundwater are considered. The process of inactivation is described by a mathematical model based on an exponential dependence. The values of the inactivation rate factor for a number of pathogenic microorganisms are given. Recommendations are given regarding formulas for determining the dependence of the inactivation rate factor of bacteria and viruses on water temperature.",{"EN":978},"Survival rate of pathogenic bacteria and viruses in groundwater",{"VOID":980},"[\"15185596509327387304\"]",{"VOID":982},"Alekseev, V.S., Pathogenic Microorganisms in Groundwater, Vodosnabzhenie i Santekhnika, 2003, no. 11, pp. 5–9.\nKudryavtseva, B.M., Sanitary-Bacteriological Criteria in the Substantiation of SPZ Boundaries for Subsurface Water Sources, in Sb. nauch. tr. NII OKG im. A.N. Sysina. “Aktual’nye voprosy sanitarnoi mikrobiologii” (Trans. NII OKG named after A.N. Sysin “Topical Issues of Sanitary Microbiology”), Moscow, 1973, pp. 26–28.\nMolozhavaya, E.I. and Chugunikhina, N.V., Forecasting Groundwater Microbial Self-Purification, Gig. Sanit., 1979, no. 8, pp. 23–27.\nNedachin, A.E., Doskina, T.I., Dmitrieva, R.A., and Lavrova, D.V., Assessment of the Significance of Coliphages as Indirect Indicators of Virus Contamination of Groundwater Sources, in Itogi i perspektivy nauchnykh issledovanii po probleme ekologii cheloveka i gigieny okruzhayushchei sredy (Results and Perspectives of Researches in Human Ecology and Environmental Hygiene), Moscow, 2002, pp. 162–167.\nOradovskaya, A.E. and Lapshin, N.N., Sanitarnaya okhrana vodozaborov podzemnykh vod (Sanitary Protection of Groundwater Intakes), Moscow: Nedra, 1987.\nOradovskaya, A.E. and Molozhavaya, E.I., Migration of Microbial Pollution in Groundwater. Sanitary Protection of Groundwater Intakes, Tr. VNII VODGEO, 1977, no. 63, pp. 70–77.\nSanPiN 2.1.4.1074-01 “Pit’evaya voda. Gigienicheskie trebovaniya k kachestvu vody tsentralizovannykh sistem pit’evogo vodosnabzheniya. Kontrol’ kachestva” (Drinking Water. Hygienic Requirements to Water Quality in Centralized Systems of Drinking Water Supply), Moscow: Minzdrav RF, 2001, p. 240.\nBitton, G., Farrah, S.R., Puskin, R.H., et al., Survial of Patogenic and Indicator Organisms in Ground Water, Ground Water, 1983, vol. 21, no.4, pp. 405–408.\nBolke, K.-D., Baim, U., and Heers, E.W., Grundlagen für den Effektiven Grundwasserschutz, Berlin; Stuttgart: Grundwasserschliessung, 2000.\nCorapcioglu, M.Y. and Haridas, A.J., Transport and Fate of Microorganisms in Porous Media: a Theoretical Investigation, Hydrology, 1984, vol. 72, pp. 149–169.\nEaston, J.H., Lalor, M.M., Gauthier, J.J., and Pitt, R.E., In-Situ Die-Off of Indicator Bacteria and Pathogens, in Watershed Management to Protect Declining Species, Seattle: Amer. Water Resour. Ass., 1999.\nFaulkner, B.R., Lyon, W.G., Khan, F.A., and Chattopadhyay, S., Predicting Attenuation of Viruses During Percolation in Soils: 1. Probabilistic Model, New York, 2002.\nGerba, C.P. and Bitton, G., Microbial Pollutants, Their Survival and Transport Pattern to Groundwater, in Groundwater Pollution Microbiology, New York: J. Wiley and Sons, 1984.\nJin, Y., Yates, M.V., Thompson, S.S., and Jury, W.A., Sorption of Viruses During Flow Through Saturated Sand Columns, Environ. Sci. Technol., 1997, vol. 31, no.2, pp. 548–555.\nKeswick, B.H. and Gerba, C.P., Viruses in Groundwater, Environ. Sci. Technol., 1980, vol. 14, no.8, pp. 1290–1297.\nMacler, B.A., Developing the Ground Water Disinfecting Rule, Am. Water Works. Ass., 1996, vol. 88, pp. 47–55.\nMatthes, G.A. and Pekdeger, A., Concepts of a Survival and Transport Model of Pathogenic Bacteria and Viruses in Groundwater, Sci. Total Environ., 1981, vol. 21, pp. 149–159.\nMatthess, G., Alexander, I., Dizer, H., et al., Lebensdauer Von Bakterien Und Viren in Grundwasserleitern, Berlin: Unweltbundes Amt., 1985.\nPedeger, A., Schrotek, J., and Champ, D.Z., Transport Von Pathogenen Bakterien Und Viren in Grundwasser, Z. Dt. Geol. Ges., 1988, pp. 443–445.\nPowelson, D.K., Simpson, J.R., and Gerba, C.P., Virus Transport and Survival in Saturated and Unsaturated Flow Through Soil Columns, J. Environ. Qual., 1990, vol. 19, pp. 396–401.\nSchijven, J.F., Hoogenboezem, W., Hassanizadeh, S.M., and Peters, J.H., Modeling Removal of Bacteriophages MS2 and PRD1 by Dune Recharge at Castricum, Netherlands, Water Resour. Res., 1999, vol. 35, no.4, pp. 1101–1111.\nSchijven, J.F. and Hassanizadeh, S., Removal of Viruses by Soil Passage: Overview of Modeling, Processes and Parameters, Critical Rew. Environ. Sci. Technol., 1999, vol. 30, pp. 1–49.\nSim, Y. and Chrysikopoulos, C.V., Analytical Models for One-Dimensional Virus Transport in Saturated Porous Media, Water Resour. Res., 1996, vol. 32, no.5, pp. 1473–1780.\nYates, M.V., Gerba, C.P., and Kelley, L.M., Virus Persistence in Groundwater, Appl. Environ. Microbiol., 1985, vol. 49, no.4, pp. 778–781.\nYates, M.V., Yates, S.R., Wagner, J., and Gerba, C.P., Modelling Virus Survival and Transport in the Subsurface, J. Contam. Hydrol., 1987, vol. 1, pp. 329–345.",{"VOID":984},"10.1007\u002Fs11268-005-0027-y","2024-06-23T04:25:21.093+00:00","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs11268-005-0027-y",[988,1003,1016,1031],{"id":989,"sortIndex":23,"researcher":22,"roles":990,"affiliations":991,"properties":1000,"displayName":1002,"givenName":22,"familyName":22},"4de4edc5-4c04-4c61-bdbb-c602d0a203fe",[187],[992],{"id":993,"sortIndex":23,"affiliation":994,"properties":22},"e42ea1e6-eec2-46b6-a3c1-148670c5b9aa",{"id":993,"createTime":22,"updateTime":22,"relativeEntities":995,"slug":22,"properties":996,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":999,"statistic":22},[],{"title":997},{"VI":998},"Moscow State University, Leninskie gory, Moscow, Russia",[],{"title":1001},{"VI":1002},"I. K. Nevecherya",{"id":1004,"sortIndex":290,"researcher":22,"roles":1005,"affiliations":1006,"properties":1013,"displayName":1015,"givenName":22,"familyName":22},"47a4fcd1-8acd-4217-aa4f-04f5be69788d",[187],[1007],{"id":993,"sortIndex":23,"affiliation":1008,"properties":22},{"id":993,"createTime":22,"updateTime":22,"relativeEntities":1009,"slug":22,"properties":1010,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1012,"statistic":22},[],{"title":1011},{"VI":998},[],{"title":1014},{"VI":1015},"V. M. 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The up-to-date state of deltas of the main rivers in Russia and all over the world are described in the Register which is presented in this paper. The Register includes geographic characteristics of deltas (including their hydrologic-ecologic state), hydrographic, morphometric and hydrologic characteristics of the deltas.",{"EN":1339},"Geographic-Hydrological Register of Deltas of Main World Rivers",{"VOID":1341},"[\"14564703498249183123\"]",{"VOID":1343},"Atlas mirovogo vodnogo balansa (Atlas of World Water Balance), Leningrad: Gidrometeoizdat, 1974.\nAtlas okeanov. Atlanticheskiy i Indiyskiy okeany (Ocean Atlas. Atlantic and Indian Oceans), Lenengrad: General Directorate of Navigation and Oceanography MD USSR, 1977.\nAtlas okeanov. Severniy ledovitiy okean (Ocean Atlas. Arctic Ocean), Lenengrad: General Directorate of Navigation and Oceanography MD USSR, 1980.\nAtlas okeanov. Tikhiy okean (Ocean Atlas. Pacific Ocean), Leningrad: General Directorate of Navigation and Oceanography MD USSR, 1974.\nAtlas Rossii geographicheskiy (Geographical Atlas of Russia), Moskva: Kartographiya, 2005.\nColeman, J.M. and Huh, O.K., Major World deltas. A perspective from space. http:\u002F\u002Fwww.geol.lsu.edu\u002F WDD\u002FPUBLICATIONS\u002FC&Hnasa04\u002FC&Hfinal04. htm.\nDai, A. and Trenberth, K.E., Estimates of freshwater discharge from continents: latitudinal and seasonal variations, J. Hydrometeorol., 2002, vol. 3, pp. 660−687.\nDai, A., Trenberth, K.E., Qian, T., and Milliman, J.D., Changes in continental freshwater discharge from 1948 to 2004, Am. Meteorol. Soc., 2009, vol. 22, no. 5, pp. 2773−2792.\nEstuarno-del’tovye sistemy Rossii i Kitaya: gidrologo-morfologicheskie protsessy, geomorfologia i prognoz razvitiya (Estuarine-deltaic systems of Russia and China: hydrological and morphological processes, geomorphology and development forecast), Moscow: GEOS, 2007.\nKaplin, P.A., Leont’ev, O.K., Luk’yanova, S.A., and Nikiforov, L.G., Berega (Coasts), Moskva: Mysl’, 1991.\nKravtsova, V.I. and Mit’kinykh, N.S., Ust’ya rek Rossii. Atlas kosmicheskikh snimkov (River Mouths of Russia. Atlas of Space Images), Moscow: Nauchniy Mir, 2013.\nMikhailov, V.N., Principles of typification and zoning of river mouth areas (Analytical review), Water Resours., 2004, vol. 31, no. 1, pp. 1−10.\nMikhailov, V.N., Ust’ya rek Rossii i sopredel’nykh stran: proshloe, nastoyashchee i budushchee (River Mouths in Russia and Nearby Countries: The Past, Present, and Future), Moscow: GEOS, 1997.\nMikhailov, V.N. and Gorin, S.L., New definitions, regionalization, and typification of river mouth areas and estuaries as their parts, Water Resour., 2012, vol. 39, no. 3, pp. 247−260.\nMilliman, J.D. and Farnsworths, K.L., River discharge to the coastal ocean. A Global Synthesis, N.Y.: Cambridge Univ. Press, 2013.\nMirovoi vodnyi balans i vodnye resursy Zemli (World Water Balance and Water Resources of the Planet), Leningrad: Gidrometeoizdat, 1974.\nReki i ozera mira. Enziklopedia (Rivers and lakes of the World. Encyclopedia), Moscow: Izd. “Enziklopedia”, 2012.\nUst’ya rek Kaspiiskogo regiona: istoriya formirovaniya, sovremennye gidrologo-morfologicheskie protsessy i opasnye gidrologicheskie yavleniya (River Mouths in the Caspian Region: Formation History, Modern Hydrological–Morphological Processes, and Hazardous Hydrological Phenomena), Moscow: GEOS, 2013.\nVodnye resursy Rossii i ikh ispol’zovanie (Water Resources of Russia and Their Use), Shiklomanov, I.A., Ed., St. Petersburg: Gos. Gidrol. Inst., 2008.\nWalker, H.J., Arctic deltas, J. Coast. 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