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Rise and decline of the fishery industry in the Aydarkul–Arnasay Lake System (Uzbekistan): effects of reservoir management, irrigation farming and climate change on an unstable ecosystem

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Abstract

Originally, a shallow saline depression between the Kyzylkum and the Nurata mountain range the Aydarkul–Arnasay Lake System (AALS) was created in 1969 when a catastrophic flood event in the Syr Darya catchment exceeded the capacity of the Chardarya reservoir. Additional water diversions further increased the volume of the lakes to up to 42.2 mln m3 in 2006. After the breakdown of the commercial fishing in the Uzbek part of the Aral Sea in 1983, the AALS became the most important fishery lake in Uzbekistan with an annual catch of more than 4600 tons (in 1988). In recent years, however, the fish catch experienced a sharp decline (down to 728 tons in 2006) due to the increased inflow of drainage water from the large Golodnaya Steppe (Hunger Steppe) irrigation scheme (e.g., 0.1 km3 in 1960, 1.0 km3 in 1970, 2.3 km3 in 1980, 2.9 km3 in 2000 and 3.6 km3 in 2010) and a decrease in freshwater inflow from the Chardarya reservoir (e.g., 4.0 km3 in 1995, 2.3 km3 in 2005 and 1.8 km3 in 2010). The increasing anthropogenic pressure, as well as the impacts of the climate change (+0.6–0.9 °C between 1950 and 2000, decrease in the long-term precipitation and increase in the variability), is threatening this ecological and economic important lake system. This article presents new data about the temporal dynamic of the lake hydrology (size, volume, water balance), the surrounding climate and its development as well as about the water quality of the lakes and the main drainage water collectors, and the development of the fish fauna over the last decades. This study, based on official data (Uzhydromet, Uzryba), online databases (GHCN) and extensive field work (water quality and fish sampling), provides a complete published analysis of the status quo of the AALS. Therefore, it is an important contribution to the establishment of a stable lake ecosystem system and a sustainable fishing industry.

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References

  • Abakumov BA (ed) (1983) Handbook of methods for the hydrobiological analysis of surface water and sediments. Gidrometeoizdat, Leningrad (in Russian)

    Google Scholar 

  • Abdullaev I, Rakhmatullaev S (2015) Transformation of water management in Central Asia—from State-centric, hydraulic mission to socio-political control. Environ Earth Sci 73:849–861. doi:10.1007/s12665-013-2879-9

    Article  Google Scholar 

  • Agaltseva N (2004) Climate change impact on the mountains river runoff in the Central Asian region. Landschaftsökologie und Umweltforschung 47. In: Proceedings of the international conference on hydrology of mountain environments, Berchtesgaden, Braunschweig, pp 7–8

  • Agaltseva N (2008) Assessment of the river extreme runoff for climate scenarios conditions. Climate change effects, adaptation issues. NIGMI Bull 7:5–9

    Google Scholar 

  • Aizen VB, Aizen EM, Joswiak DR, Fujita K, Takeuchi N, Nikitin SA (2006) Glacier changes in the central and northern Tien Shan during the last 140 years based on surface and remote-sensing data. Ann Glaciol 43:202–213

    Article  Google Scholar 

  • Alihanov BB (2008) About a condition of environment and use of natural resources in Republic of Uzbekistan (The Retrospective Analysis for 1988–2007). National Report of the State Committee for Nature Protection of the Republic of Uzbekistan, Tashkent (in Russian)

  • Amanov AA (1985) Fish ecology of water bodies in the south of Uzbekistan and neighbouring republics. Pub. FAN, Tashkent (in Russian)

    Google Scholar 

  • Aparin V, Kawabata Y, Ko S, Shiraishi K, Nagai M, Yamamoto M, Katayama Y (2006) Evaluation of geoecological status and anthropogenic impact on the Central Kyzylkum Desert (Uzbekistan). J Arid Land Stud 15:129–133

    Google Scholar 

  • Bates B, Kundzewicz ZW, Wu S, Palutikof J (eds) (2008) Climate change and water. Technical paper. Intergovernmental Panel on Climate Change, Geneva

    Google Scholar 

  • Bernauer T, Siegfried T (2012) Climate change and international water conflict in Central Asia. J Peace Res 49(1):227–239. doi:10.1177/0022343311425843

    Article  Google Scholar 

  • Bohlin T, Hamrin S, Heggberget TG, Rasmussen G, Saltveit SJ (1989) Electrofishing—theory and practice with special emphasis on salmonids. Hydrobiologia 173:9–43

    Article  Google Scholar 

  • Chub VE, Agaltseva N, Myagkov S (2002) Climate change impact on the rivers runoff for the Central Asian River. In: Proceedings of the international conference on hydrology and watershed management with the focal theme on water quality and conversation, vol 2, pp 252–257

  • Cruz RV, H. Harasawa H, Lal M. Wu S, Anokhin B, Punsalmaa Y, Honda Y, Jafari M, Li C, Huu Ninh N (2007) Asia. In: Parry ML, Canziani OF, Palutikof JP, van der Linden PJ, Hanson CE (eds) Climate change 2007: impacts, adaptation and vulnerability. Contribution of working group II to the fourth assessment report of the intergovernmental panel on climate change. Cambridge University Press, Cambridge, pp 469–506

  • Cudmore B, Mandrak NE (2004) Biological synopsis of grass carp (Ctenopharyngodon idella). Can Manuscr Rep Fish Aquat Sci 2705:44

    Google Scholar 

  • Djanibekov N, Frohberg K, Djanibekov U (2010) Income-based projections of water demand for food consumption in Central Asia—the case of Uzbekistan. In: Merz B, Dukhovny V, Unger-Shayesteh K (eds) Water in Central Asia, volume of abstracts, international scientific symposium, November 2010. Tashkent, p 35

  • Ermakhanov ZK, Plotnikov IS, Aladin NV, Micklin P (2012) Changes in the Aral Sea ichthyofauna and fishery during the period of ecological crisis. Lakes Reserv Res Manag 17:3–9

    Article  Google Scholar 

  • FAO (2003) Fertilizer use by crop in Uzbekistan. FAO Land and Water Development Division, Rome, p 28

    Google Scholar 

  • FAO (2014) The state of world fisheries and aquaculture—opportunities and challenges. FAO, Rome, p 223

    Google Scholar 

  • Fedorov EA (1973) Morphological characteristics of the Crucian Carp of the Kairak-Kum Reservoir. IZV Akad Nauk Tadzh SSR OTD Biol Nauk 1:75–78 (in Russian)

    Google Scholar 

  • Groll M, Opp C, Aslanov I (2013) Spatial and Temporal distribution of the dust deposition in Central Asia—results from a long term monitoring program. Aeolian Research 9:49–62. doi:10.1016/j.aeolia.2012.08.002

    Article  Google Scholar 

  • Groll M, Opp C, Kulmatov R, Ikramova M, Normatov I (2015a) Water quality, potential conflicts and solutions—an upstream-downstream analysis of the transnational Zarafshan River (Tajikistan, Uzbekistan). Environ Earth Sci 73:743–763. doi:10.1007/s12665-013-2988-5

    Article  Google Scholar 

  • Groll M, Opp C, Kulmatov R, Sun Z, Normatov I, Bernardi A, Ikramova M, Stulina G (2015b) Managing Central Asia’s transboundary rivers—case studies from the Zarafshan (Tajikistan/Uzbekistan) and Tarim (Kyrgyzstan/China) River. In: Brebbia CA (ed) River basin management VIII. WIT transactions on ecology and the environment, vol 196, pp 149–160. doi:10.2495/WRM150131

  • Hagg W, Braun LN, Kuhn M, Nesgaard TI (2007) Modelling of hydrological response to climate change in glacierized Central Asian catchments. J Hydrol 332(1–2):40–53

    Article  Google Scholar 

  • http://neespi.sr.unh.edu/ (2014) Hydrological data provided by the Northern Eurasia Earth Science Partnership Initiative. Accessed 10 Dec 2014

  • http://www.bafg.de (2015) Hydrological data provided by the Global River Discharge Database. www.bafg.de/GRDC/EN/Home/homepage_node.html. Accessed 8 Nov 2015

  • http://www.cia.gov (2013) The world Facbook. http://www.cia.gov/library/publications/the-world-factbook/. Accessed 12 Mar 2013

  • http://www.indexmundi.com (2013) Worldwide statistical database. http://www.indexmundi.com/asia.html. Accessed 13 Mar 2013

  • http://www.ncdc.noaa.gov (2015) Meteorological data provided by the Global Historical Climate Network. www https://www.ncdc.noaa.gov/data-access/land-based-station-data/land-based-datasets/global-historical-climatology-network-ghcn. Accessed 8 Nov 2015

  • http://www.worldbank.org (2013) Statistical data about countries and economies. http://data.worldbank.org/country. Accessed 2 Apr 2013

  • Ibatullin S, Yasinsky V, Mironenkov A (2009) Impacts of climate change on water resources in Central Asia. Sector report of the Eurasian development bank, p 42

  • Kamilov GK (1973) Fish in Uzbekistan Reservoirs. Pub FAN, Tashkent (in Russian)

    Google Scholar 

  • Kamilov GK, Urchinov ZU (1995) Fish and fisheries in Uzbekistan under the impact of irrigated agriculture. In: Petr T (ed) Inland fisheries under the impact of irrigated agriculture—Central Asia. FAO Fisheries Circular 894 FIRI/v9529, Rome, pp 10–42

    Google Scholar 

  • Karimov B, Kamilov B, Upare M, van Anrooy R, Bueno P, Shokhimardonov D (2009) Inland capture fisheries and aquaculture in the Republic of Uzbekistan—current status and planning. FAO Fisheries and Aquaculture Circular No. 1030/1, SEC/C1030/1, Rome, p 124

    Google Scholar 

  • Karthe D, Chalov S, Borchardt D (2015) Water resources and their management in central Asia in the early twenty first century—status, challenges and future prospects. Environ Earth Sci 73:487–499

    Article  Google Scholar 

  • Kiyatkin AK, Shaporenko SI, Sanin MV (1990) Water and Salt Regime of the Arnasai Lakes. Gidrotekhnicheskoe Stroitel’stvo 3:172–177

    Google Scholar 

  • Konovalov VG, Agaltseva N (2005) Projected change of glaciers size and river runoff in the different scenarios of future climate. Exch Intellect Prop 4(8):37–47

    Google Scholar 

  • Kostianoy AG, Zavialov PO, Lebedev SA (2004) What do we know about dead, dying and endangered lakes and seas? In: Nihoul JCJ, Zavialov PO, Micklin PP (eds) Dying and dead seas—climatic versus anthropogenic causes. NATO science series IV—earth and environmental sciences, vol 36, pp 1–48. doi:10.1007/978-94-007-0967-6

  • Küçük S (2013) The effects of salinity on growth of goldfish, Carassius auratus and crucian carp, Carassius carassius. Afr J Biotechnol 12(16):2082–2087. doi:10.5897/AJB12.430

    Article  Google Scholar 

  • Kulmatov RA, Hojamberdiev M (2010) Heavy metals concentration and speciation in Arid Zone Rivers (Amudarya and Syrdarya) of Central Asia. J Environ Sci Eng 4(8):36–45

    Google Scholar 

  • Kulmatov R, Mullabaev N, Nigmatov A, Kulmatova D, Sobirov J (2013) Qualitative and quantitative assessment of water resources of Aydar Arnasay Lake System (AALS). J Water Resour Protect 5(10):941–952. doi:10.4236/jwarp.2013.510097

    Article  Google Scholar 

  • Kutuzov S, Shahgedanova M (2009) Glacier retreat and climatic variability in the eastern Terskey-Alatoo, inner Tien Shan between the middle of the 19th century and beginning of the 21st century. Glob Planet Chang 69:59–70

    Article  Google Scholar 

  • Létolle R, Aladin N, Filipov I, Boroffka NGO (2005) The future chemical evolution of the Aral Sea from 2000 to the years 2050. Mitig Adapt Strateg Global Change 10:51–70

    Article  Google Scholar 

  • Libert B, Orolbaev E, Steklov Y (2008) Water and energy crisis in Central Asia. China Eurasia Forum Q 6(3):9–20

    Google Scholar 

  • Lioubimtseva E (2015) A multi-scale assessment of human vulnerability to climate change in the Aral Sea basin. Environ Earth Sci 73:719–729. doi:10.1007/s12665-014-3104-1

    Article  Google Scholar 

  • Lioubimtseva E, Henebry GM (2009) Climate and environmental change in arid Central Asia—impacts, vulnerability, and adaptations. J Arid Environ 73:963–977

    Article  Google Scholar 

  • Matley IM (1970) The Golodnaya Steppe—a Russian irrigation venture in Central Asia. Geogr Rev 60(3):328–346

    Article  Google Scholar 

  • Micklin PP (1988) Desiccation of the Aral Sea: a water management disaster in the Soviet union. Science 241:1170–1176

    Article  Google Scholar 

  • Micklin P (2007) The Aral Sea Disaster. Annu Rev Earth Planet Sci 35:47–72. doi:10.1146/annurev.earth.35.031306.140120

    Article  Google Scholar 

  • Micklin P (2016) The future Aral Sea: hope and despair. Environ Earth Sci 75(9):15. doi:10.1007/s12665-016-5614-5

    Article  Google Scholar 

  • Micklin PP, Williams WD (eds) (1996) The Aral Sea Basin. NATO ASI Series, vol 12, p 187. doi:10.1007/978-3-642-61182-7

  • Mullabaev N (2006) The Arnasay lake system fish products’s development perspectives. In: Ecological Vestnik, pp 37–38 (in Russian)

  • Mullabaev N (2010) Hydrogeological condition and fish development potential of AALS and Mejdurrechinsk. PhD thesis, National University of Uzbekistan, Tashkent (in Russian)

  • O’Hara SL, Wiggs GF, Mamedov B, Davidson G, Hubbard RB (2000) Exposure to airborne dust contaminated with pesticide in the Aral Sea region. Lance 355(9204):627–628

    Article  Google Scholar 

  • Opp C (2007) Vom Aralsee zur Aralkum—Ursachen, Wirkungen und Folgen des Aralseesyndroms. In: Glaser R, Kremb K (eds) Asien (Reihe Planet Erde). Wissenschaftliche Buchgesellschaft, Darmstadt, pp 90–100

  • Perelet R (2008) Central Asia—background paper on climate change. In: UNDP (eds) Human Development Report 2007/2008 - Fighting climate change: Human solidarity in a divided world. Human Development Report Office. Occasional Paper, p 24

  • Petr T (1995) Fisheries in irrigated areas of Central Asia. In: Petr T (ed) Inland fisheries under the impact of irrigated agriculture—Central Asia. FAO Fisheries Circular 894 FIRI/v9529, Rome, p 62

    Google Scholar 

  • Petr T, Ismukhanov K, Kamilov B, Umarov P (2004) Irrigation systems and their fisheries in the Aral Sea Basin, Central Asia. In: Robin L, Petr T (eds) Sustaining livelihoods and biodiversity in the new millennium. Proceedings of the FAO and Mekong River commission conference, 11.-14.02.2003, Phnom Penh. RAP Publication 17/2004, p 27

  • Pravdin IF (1966) Manual on study of fish. Pischevaya Promyshlennos, Moscow (in Russian)

    Google Scholar 

  • Ryabtsev AD (2001) Threats to water security in the Republic of Kazakhstan: the transboundary context and possible ways to eliminate them. In: Madramootoo CA, Dukhovny VA, Baker RS, Fyles IH (eds) Water and food security in Central Asia. NATO science for peace and security series – c – environmental security, pp 69–75

  • Sagitov NI (1983) Fishes and fodder invertebrates in the middle and lower course of the Amu Darya. Pub. FAN, Tashkent (in Russian)

    Google Scholar 

  • Saiko T, Zonn IS (2000) Irrigation expansion and dynamics of desertification in the Circum-Aral region of Central Asia. Appl Geogr 20:349–367

    Article  Google Scholar 

  • Savoskul OS (ed) (2003) Water, climate, food, and environment in the Syr Darya Basin. Adaptation strategies to changing environments. Report for the Stockholm Environment Institute, p 62

  • Shepherd A, Mitchell T, Lewis K, Lenhardt A, Jones L, Scott L, Muir-Wood R (2013) The geography of poverty, disasters and climate extremes in 2030. ODI report, London, p 72

    Google Scholar 

  • Solodukhin VP, Poznyak VL, Kazachevskiy IV, Knyazev BB, Lukashenko SN, Khazhekber S (2004) Some peculiarities of the contamination with radionuclides and toxic elements of the Syrdarya river basin, Kazakhstan. J Radioanal Nucl Chem 259(2):245–250

    Article  Google Scholar 

  • Umarov NU (2013) About a condition of environment and use of natural resources in Republic of Uzbekistan (The Retrospective Analysis for 2008–2011). National Report of the State Committee for Nature Protection of the Republic of Uzbekistan, Tashkent (in Russian)

  • US Army Map Service (ed) (1955) Maps of Central Asia – NK42-7 (Chardara, U.S.S.R.), NK42-8 (Tashkent, U.S.S.R.), NK42-10 (Dzhizak, U.S.S.R.). Corps of Engineers, Washington

  • Wahyuni S, Oishi S, Sunada K, Toderich KN, Gorelkin NE (2009) Analysis of water-level fluctuations in Aydarkul-Arnasay-Tuzkan lake system and its impacts on the surrounding groundwater level. Annu J Hydraul Eng 53:37–42

    Google Scholar 

  • Whish-Wilson P (2002) The Aral Sea environmental health crisis. J Rural Rem Environ Health 1:29–34

    Google Scholar 

  • WHO (eds) (1996) Total dissolved solids in drinking-water—background document for development of WHO guidelines for drinking-water quality. WHO/SDE/WSH/03.04/16. Originally published in: Guidelines for drinking-water quality, Health criteria and other supporting information, 2nd edn. vol 2, World Health Organization, Geneva, p 3

  • Wiggs GFS, O’Hara S, Wegerdt J, Van Der Meer J, Small I, Hubbard R (2003) The dynamics and characteristics of aeolian dust in dryland Central Asia: possible impacts on human exposure and respiratory health in the Aral Sea basin. Geogr J 169:142–157

    Article  Google Scholar 

  • Wootton RJ (1990) Ecology of teleost fishes. Springer, Netherlands

    Google Scholar 

  • Zetterström R (1999) Child health and environmental pollution in the Aral Sea region in Kazakhstan. Acta Paediatr Suppl 429:49–54

    Article  Google Scholar 

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Acknowledgments

The Erasmus Mundus CASIA 3 Programme (EU) and the DAAD are acknowledged for funding the international short visits of Dr. R. Kulmatov to the University of Natural Resources and Life Sciences (BOKU) Vienna (Austria) and to the Philipps-University Marburg (Germany) to complete this study.

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Correspondence to M. Groll or R. Kulmatov.

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This article is part of a Topical Collection in Environmental Earth Sciences on “Water in Central Asia”, guest edited by Daniel Karthe, Iskandar Abdullaev, Bazartseren Boldgiv, Dietrich Borchardt, Sergey Chalov, Jerker Jarsjö, Lanhai Li and Jeff Nittrouer.

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Groll, M., Kulmatov, R., Mullabaev, N. et al. Rise and decline of the fishery industry in the Aydarkul–Arnasay Lake System (Uzbekistan): effects of reservoir management, irrigation farming and climate change on an unstable ecosystem. Environ Earth Sci 75, 921 (2016). https://doi.org/10.1007/s12665-016-5691-5

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