冰川融水对山地冰冻圈冰湖水文效应的影响
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  • 英文篇名:The influence of glacier meltwater on the hydrological effect of glacial lakes in Mountain Cryosphere
  • 作者:王欣 ; 丁永建 ; 张勇
  • 英文作者:WANG Xin;DING Yongjian;ZHANG Yong;School of Resource Environment and Safety Engineering,Hunan University of Science and Technology;State Key Laboratory of Cryospheric Science,Northwest Institute of Ecology and Environmental Resources,Chinese Academy of Sciences;
  • 关键词:山地冰冻圈 ; 物理化学性质 ; 冰湖 ; 水文效应 ; 灾害
  • 英文关键词:Mountain Cryosphere;;physical chemistry properties;;glacial lake;;hydrological effect;;hazard
  • 中文刊名:FLKX
  • 英文刊名:Journal of Lake Sciences
  • 机构:湖南科技大学资源环境与安全工程学院;中国科学院西北生态环境资源研究院冰冻圈科学国家重点实验室;
  • 出版日期:2019-05-06
  • 出版单位:湖泊科学
  • 年:2019
  • 期:v.31
  • 基金:国家自然科学基金项目(41771075,41271091);; 国家重大科学研究计划重大科学目标导向项目(2013CBA01800)联合资助
  • 语种:中文;
  • 页:FLKX201903001
  • 页数:12
  • CN:03
  • ISSN:32-1331/P
  • 分类号:3-14
摘要
冰川融水通过热量、水、物质传输对山地冰冻圈冰湖水文效应产生影响,引起广泛关注.本文从山地冰冻圈冰湖的水量、物理化学性质、生物等方面系统总结冰川融水对冰湖水文效应的影响.冰川融水被冰湖滞留能在一定程度上延缓区域冰川水资源的亏损,但也直接导致了潜在危险性冰湖数量和危险程度增大.冰川融水对冰湖物理性质的影响主要表现在降低湖水温度、影响透明度/浊度、改变湖水密度、造成湖水热力分层现象等方面,对冰湖化学性质的影响主要表现在增加湖水中的氮素、溶解有机物、持久性有机污染物、各类离子和重金属等,进而影响冰湖生物的分布、组成、结构和功能.深入系统地开展冰川融水及其变化对冰湖水文效应研究,对冰川水文与水资源、山地冰冻圈生态环境研究具有重要意义.
        Much attention has been attracted on the glacier meltwater due to its influence on the hydrological effect of glacial lakes through heat,water and material transmission in Mountain Cryosphere. We summarized the impacts of glacier meltwater on the hydrological effects with respects to the water quantity,physicochemical properties and biology of glacial lake in this paper. A certain amount of glacier water resources has been temporarily held resulted by the meltwater direct inflowing into glacial lakes,which retarded the loss water resources in the glaciated area to some extent on one hand,increased the number and hazardousness of the potential dangerous glacial lakes on the other hand. Glacier meltwater affects both physical and chemical properties of glacial lakes.Meltwater normally reduced lake temperature,disturbed lake transparency/turbidity,and facilitated thermal stratification of the glacial lake. Meltwater also increased the contents of nitrogen,dissolved organic matter,persistent organic pollutants,ion concentrations and heavy metals in the glacial lake water,influenced the distribution,composition,structure and function of glacial lake organisms and ecosystem. An in-depth and systematic research on the impacts of glacier meltwater and its changes on hydrological effect of glacial lakes,is of great significant to the glacier hydrology,water resources and ecological environment study of Mountain Cryosphere.
引文
[1] Qin DH,Yao TD,Ding YJ et al eds. Glossary of gryospheric science. Beijing:China Meteorological Press,2016:12.[秦大河,姚檀栋,丁永建等.冰冻圈科学辞典.北京:气象出版社,2016:12.]
    [2] Yang CD,Wang X,Wei JF et al. Chinese glacial lake inventory based on 3S technology method. Acta Geographica Sinica,2019,74(3):544-556.[杨成德,王欣,魏俊峰等.基于3S技术方法的中国冰湖编目.地理学报,2019,74(3):544-556.]
    [3] Zhang GQ,Yao TD,Xie HJ et al. An inventory of glacial lakes in the Third Pole region and their changes in response to global warming. Global&Planetary Change,2015,131:148-157. DOI:10.1016/j.gloplacha.2015.05.013.
    [4] Wang X,Ding YJ,Liu SY et al. Changes of glacial lakes and implications in Tian Shan,central Asia,based on remote sensing data from 1990 to 2010. Environmental Research Letters,2013,8(4):575-591. DOI:10. 1088/1748-9326/8/4/044052.
    [5] Zhang GQ. Changes in lakes on the Tibetan Plateau observed from satellite data and their responses to climate variations.Progress in Geography,2018,37(2):214-223. DOI:10.18306/dlkxjz.2018.02.004.[张国庆.青藏高原湖泊变化遥感监测及其对气候变化的响应研究进展.地理科学进展,2018,37(2):214-223.]
    [6] Slemmons KE,Saros JE,Simon K. The influence of glacial meltwater on alpine aquatic ecosystems:a review. Environ Sci Process Impacts,2013,15(10):1794-1806. DOI:10.1039/c3em00243h.
    [7] Wang X,Liu QH,Liu SY et al. Heterogeneity of glacial lake expansion and its contrasting signals with climate change in Tarim Basin,Central Asia. Environmental Earth Sciences,2016,75(8):696. DOI:10.1007/s12665-016-5498-4.
    [8] Wang X,Liu SY,Mo HW et al. Expansion of glacial lakes and its implication for climate changes in the Chinese Himalaya. Acta Geographica Sinica,2011,66(7):895-904. DOI:10.11821/xb201107003.[王欣,刘时银,莫宏伟等.我国喜马拉雅山区冰湖扩张特征及其气候意义.地理学报,2011,66(7):895-904.]
    [9] Sorg A,Bolch T,Stoffel M et al. Climate change impacts on glaciers and runoff in Tien Shan(Central Asia). Nature Climate Change,2012,2(10):725-731. DOI:10.1038/nclimate1592.
    [10] Yao TD,Qin DH,Sheng YP et al. Cryospheric changes and their impacts on regional water cycle and ecological conditions in the Qinghai-Tibetan Plateau. Chinese Journal of Nature,2013,35(3):179-186.[姚檀栋,秦大河,沈永平等.青藏高原冰冻圈变化及其对区域水循环和生态条件的影响.自然杂志,2013,35(3):179-186.]
    [11] Qin DH,Zhou BT,Xiao CD. Progress in studies of cryospheric changes and their impacts on climate of China. Acta Meteorologica Sinica,2014,(5):869-879. DOI:10.11676/qxxb2014.080.[秦大河,周波涛,效存德.冰冻圈变化及其对中国气候的影响.气象学报,2014,(5):869-879.]
    [12] Wang NL,Liu SY,Wu QB et al. Recent progress in the study of the change of cryosphere in the northern hemisphere and its impacts on climate and environment. China Basic Science,2015,(2):9-14.[王宁练,刘时银,吴青柏等.北半球冰冻圈变化及其对气候环境的影响.中国基础科学,2015,(2):9-14.]
    [13] Duan KQ,Yao TD,Shi PH et al. Simulation and prediction of equilibrium line altitude of glaciers in the eastern Tibetan Plateau. Scientia Sinica Terrae,2017,47(1):104-113. DOI:10.1360/N072016-00062.[段克勤,姚檀栋,石培宏等.青藏高原东部冰川平衡线高度的模拟及预测.中国科学:地球科学,2017,47(1):104-113.]
    [14] Zhang Y,Hirabayashi Y,Fujita K et al. Heterogeneity in supraglacial debris thickness and its role in glacier mass changes of the Mount Gongga. Science China Earth Sciences,2016,59(1):170-184.
    [15] Bolch T,Kulkarni A,Kaab A et al. The state and fate of Himalayan glaciers. Science,2012,336(6079):310-314. DOI:10.1126/science.1215828.
    [16] Yao TD,Li ZG,Yang W et al. Glacial distribution and mass balance in the Yarlung Zangbo River and its influence on lakes. Chinese Science Bulletin,2010,55(18):1750-1756. DOI:10.1007/s11434-010-3213-5.[姚檀栋,李治国,杨威等.雅鲁藏布江流域冰川分布和物质平衡特征及其对湖泊的影响.科学通报,2010,55(18):1750-1756.]
    [17] Kang SC,Xu YW,You QL et al. Review of climate and cryospheric change in the Tibetan Plateau. Environmental Research Letters,2010,5(1):015101. DOI:10.1088/1748-9326/5/1/015101.
    [18] Haeberli W,Linsbauer A. Brief communication:Global glacier volumes and sea level-small but systematic effects of ice below the surface of the ocean and of new local lakes on land. The Cryosphere,2013,7(3):817-821. DOI:10.5194/tc-7-817-2013.
    [19] Gardner AS,Moholdt G,Cogley JG et al. A reconciled estimate of glacier contributions to sea level rise:2003 to 2009.Science,2013,340(6134):852-857. DOI:10.1126/science.1234532.
    [20] Neckel N,Kropáˇcek J,Bolch T et al. Glacier mass changes on the Tibetan Plateau 2003-2009 derived from ICESat laser altimetry measurements. Environmental Research Letters,2014,9(9):468-475. DOI:10.1088/1748-9326/9/1/014009.
    [21] Kb A,Treichler D,Nuth C et al. Brief communication:Contending estimates of 2003-2008 glacier mass balance over the Pamir-Karakoram-Himalaya. The Cryosphere,2015,9(2):557-564. DOI:10.5194/tc-9-557-2015.
    [22] Brun F,Berthier E,Wagnon P et al. A spatially resolved estimate of High Mountain Asia glacier mass balances,2000-2016. Nat Geosci,2017,10(9):668-673. DOI:10.1038/NGEO2999.
    [23] Wang X,Siegert F,Zhou AG et al. Glacier and glacial lake changes and their relationship in the context of climate change,Central Tibetan Plateau 1972-2010. Global&Planetary Change,2013,111(12):246-257. DOI:10.1016/j.gloplacha.2013.09.011.
    [24] Gardelle J,Arnaud Y,Berthier E. Contrasted evolution of glacial lakes along the Hindu Kush Himalaya mountain range between 1990 and 2009. Global&Planetary Change,2011,75(1):47-55. DOI:10.1016/j.gloplacha.2010.10.003.
    [25] Nie Y,Sheng YW,Liu Q et al. A regional-scale assessment of Himalayan glacial lake changes using satellite observations from 1990 to 2015. Remote Sensing of Environment,2017,189:1-13. DOI:10.1016/j.rse.2016.11.008.
    [26] Wang WC,Xiang Y,Gao Y et al. Rapid expansion of glacial lakes caused by climate and glacier retreat in the Central Himalayas. Hydrological Processes,2014,29(6):859-874.
    [27] Wang X,Chai KG,Liu SY et al. Changes of glaciers and glacial lakes implying corridor-barrier effects and climate change in the Hengduan Shan,southeastern Tibetan Plateau. Journal of Glaciology,2017,63(239):1-8. DOI:10. 1017/jog.2017.14.
    [28] Wang X,Liu SY,Guo WQ et al. Using remote sensing data to quantify changes in Glacial Lakes in the Chinese Himalaya.Mountain Research&Development,2012,32(2):203-212. DOI:10.1659%2Fmrd-journal-d-11-00044.1.
    [29] Wang X,Han HD,Wang J et al. Thermal regime of a supraglacial lake on the debris-covered Koxkar Glacier,southwest Tianshan,China. Environmental Earth Sciences,2012,67(1):175-183. DOI:10.1007/s12665-011-1490-1.
    [30] Song CQ,Huang B,Richards K et al. Accelerated lake expansion on the Tibetan Plateau in the 2000s:Induced by glacial melting or other processes? Water Resources Research,2014,50(4):3170-3186. DOI:10.1002/2013wr014724.
    [31] Zhang GQ,Yao TD,Piao SL et al. Extensive and drastically different alpine lake changes on Asia's high plateaus during the past four decades. Geophysical Research Letters,2017,44(1):252-260. DOI:10.1002/2016gl072033.
    [32] Song CQ,Sheng YW,Ke LH et al. Glacial lake evolution in the southeastern Tibetan Plateau and the cause of rapid expansion of proglacial lakes linked to glacial-hydrogeomorphic processes. Journal of Hydrology,2016,540:504-514. DOI:10.1016/j.jhydrol.2016.06.054.
    [33] Ju JT,Zhu LP,Wang JB et al. Estimating the contribution of glacial meltwater to Ranwu Lake,a proglacial lake in SE Tibet,using observation data and stable isotopic analyses. Environmental Earth Sciences,2017,76(5):229. DOI:10.1007/s12665-017-6544-6.
    [34] Das Pranab Kr. Global warming,glacial lakes and cloud burst events in Garhwal-Kumaon Himalaya:A hypothetical analysis. International Journal of Environmental Science,2015,5(4). DOI:10.6088/ijes.2014050100065.
    [35] Loriaux T,Casassa G. Evolution of glacial lakes from the Northern Patagonia Icefield and terrestrial water storage in a sealevel rise context. Global&Planetary Change,2013,102(8):33-40. DOI:10.1016/j.gloplacha.2012.12.012.
    [36] Wang X,Liu SY,Ding YJ et al. An approach for estimating the breach probabilities of moraine-dammed lakes in the Chinese Himalayas using remote-sensing data. Natural Hazards and Earth System Sciences,2012,12:3109-3122. DOI:10.5194/nhess-12-3109-2012.
    [37] Clague JJ,Evans SG. A review of catastrophic drainage of moraine-dammed lakes in British Columbia. Quaternary Science Reviews,2000,19(17):1763-1783. DOI:10.1016/s0277-3791(00)00090-1.
    [38] Fujita K,Sakai A,Takenaka S et al. Potential flood volume of Himalayan glacial lakes. Natural Hazards&Earth System Sciences,2013,13(7):1827-1839. DOI:10.5194/nhess-13-1827-2013.
    [39] Harrison S,Kargel JS,Huggel C et al. Climate change and the global pattern of moraine-dammed glacial lake outburst floods. Cryosphere,2018,12(4):1-28. DOI:10.5194/tc-2017-203.
    [40] Wang X,Liu SY,Ding YJ eds. Research on evaluation method and application of outburst disaster in Hail Lake in Himalayas,China. Beijing:Science Press,2016:324.[王欣,刘时银,丁永建.中国喜马拉雅山冰碛湖溃决灾害评价方法与应用研究.北京:科学出版社,2016:324.]
    [41] Ng FL,Liu SY. Temporal dynamics of a jkulhlaup system. Journal of Glaciology,2009,55(192):651-665. DOI:10.3189/002214309789470897.
    [42] Shangguan DH,Ding YJ,Liu SY et al. Quick release of internal water storage in a glacier leads to underestimation of the hazard potential of glacial lake outburst floods from Lake Merzbacher in central Tian shan Mountains. Geophysical Research Letters,2017,44(19):9786-9795. DOI:10.1002/2017gl074443.
    [43] Edmundson JA,Mazumder A. Regional and hierarchical perspectives of thermal regimes in subarctic,Alaskan lakes.Freshwater Biology,2002,47(1):1-17. DOI:10.1046/j.1365-2427.2002.00775.x.
    [44] Peter H,Sommaruga R. Alpine glacier-fed turbid lakes are discontinuous cold polymictic rather than dimictic. Inland Waters,2017,7(1):45-54. DOI:10.1080/20442041.2017.1294346.
    [45] Liu Y,Yao T,Jiao N et al. Microbial community structure in moraine lakes and glacial meltwaters,Mount Everest. Fems Microbiology Letters,2006,265(1):98-105. DOI:10.1111/j.1574-6968.2006.00477.x.
    [46] Hood E,Berner L. Effects of changing glacial coverage on the physical and biogeochemical properties of coastal streams in southeastern Alaska. Journal of Geophysical Research Biogeosciences, 2009, 114(G3):162-174. DOI:10.1029/2009jg000971.
    [47] Nelitz MA,Moore RD,Parkinson E. Developing a framework to designate“Temperature Sensitive Streams”in the BC interior. Final report prepared by ESSA Technologies Ltd.,University of British Columbia,and BC Ministry of Environment for BC Forest Science Program,Price water house Coopers,Vancouver,BC,2008:3.
    [48] Moore RD. Stream temperature patterns in British Columbia,Canada,based on routine spot measurements. Canadian Water Resources Journal,2006,31(1):41-56. DOI:10.4296/cwrj3101041.
    [49] Sugiyama S,Minowa M,Sakakibara D et al. Thermal structure of proglacial lakes in Patagonia. Journal of Geophysical Research Earth Surface,2016,121(12):2270-2286. DOI:10.1002/2016jf004084.
    [50] Pizarro J,Vergara PM,Cerda S et al. Cooling and eutrophication of southern Chilean lakes. Sci Total Environ,2016,541:683-691. DOI:10.1016/j.scitotenv.2015.09.105.
    [51] Haeberli W,Kb A,Mühll DV et al. Prevention of outburst floods from periglacial lakes at Grubengletscher,Valais,Swiss Alps. Journal of Glaciology,2001,47(156):111-122. DOI:10.3189/172756501781832575.
    [52] Van Colen WR,Mosquera P,Vanderstukken M et al. Limnology and trophic status of glacial lakes in the tropical Andes(Cajas National Park,Ecuador). Freshwater Biology,2016,62(3):458-473. DOI:10.1111/fwb.12878.
    [53] Sommaruga R,Kandolf G. Negative consequences of glacial turbidity for the survival of freshwater planktonic heterotrophic flagellates. Sci Rep,2014,4(7):4113. DOI:10.1038/srep04113.
    [54] Hylander S,Jephson T,Lebret K et al. Climate-induced input of turbid glacial meltwater affects vertical distribution and community composition of phyto-and zooplankton. Journal of Plankton Research,2011,33(8):1239-1248. DOI:10.1093/plankt/fbr025.
    [55] Rose KC,Hamilton DP,Williamson CE et al. Light attenuation characteristics of glacially-fed lakes. Journal of Geophysical Research Biogeosciences,2014,119(7):2169-8953. DOI:10.1002/2014jg002674.
    [56] Gallegos CL,Davies-Colley RJ,Gall M. Optical closure in lakes with contrasting extremes of reflectance. Limnology&Oceanography,2008,53(5):2021-2034. DOI:10.4319/lo.2008.53.5.2021.
    [57] Bonalumi M,Anselmetti FS,Kaegi R et al. Particle dynamics in high-Alpine proglacial reservoirs modified by pumpedstorage operation. Water Resources Research,2011,47(9):178-187. DOI:10.1029/2010wr010262.
    [58] Horodyskyj UN. Thermal and physical investigations into lake deepening processes on Spillway Lake,Ngozumpa Glacier,Nepal. Water,2017,9:362. DOI:10.3390%2Fw9050362.
    [59] Saros JE,Rose KC,Clow DW et al. Melting Alpine glaciers enrich high-elevation lakes with reactive nitrogen. Environmental Science&Technology,2010,44(13):4891-4896. DOI:10.1021/es100147j.
    [60] Lafrenière MJ,Sharp MJ. A comparison of solute fluxes and sources from glacial and non-glacial catchments over contrasting melt seasons. Hydrological Processes,2005,19(15):2991-3012.
    [61] Hood E,Fellman J,Spencer RG et al. Glaciers as a source of ancient and labile organic matter to the marine environment.Nature,2009,462(7276):1044-1047. DOI:10.1038/nature08580.
    [62] Singer GA,Fasching C,Wilhelm L et al. Biogeochemically diverse organic matter in Alpine glaciers and its downstream fate. Nature Geoscience,2012,5(5):710-714. DOI:10.1038/ngeo1581.
    [63] Hood E,Scott D. Riverine organic matter and nutrients in southeast Alaska affected by glacial coverage. Nature Geoscience,2008,1(9):583-587. DOI:10.1038/ngeo280.
    [64] Sickman JO,Leydecker AL,Melack JM. Nitrogen mass balances and abiotic controls on N retention and yield in high-elevation catchments of the Sierra Nevada,California,United States. Water Resources Research,2001,37(5):1445-1461.DOI:10.1029/2000wr900371.
    [65] Blais JM,Schindler DW,Muir DC et al. Melting glaciers:a major source of persistent organochlorines to subalpine Bow Lake in Banff National Park,Canada. Ambio,2001,30(7):410-415. DOI:10.1579/0044-7447-30.7.410.
    [66] Blais JM,Schindler DW,Muir DCG et al. Accumulation of persistent organochlorine compounds in mountains of western Canada. Nature,1998,395(6702):585-588. DOI:10.1038/26944.
    [67] Bettinetti R,Quadroni S,Galassi S et al. Is meltwater from Alpine glaciers a secondary DDT source for lakes? Chemosphere,2008,73(7):1027-1031. DOI:10.1016/j.chemosphere.2008.08.017.
    [68] Cheng H,Lin T,Zhang G et al. DDTs and HCHs in sediment cores from the Tibetan Plateau. Chemosphere,2014,94(1):183-189. DOI:10.1016/j.chemosphere.2013.10.012.
    [69] Wang XP,Sun DC,Yao TD. Climate change and global cycling of persistent organic pollutants:A critical review. Scientia Sinica Terrae,2016,(10):1301-1316. DOI:10.1007/s11430-016-5073-0.[王小萍,孙殿超,姚檀栋.气候变化与持久性有机污染物全球循环.中国科学:地球科学,2016,(10):1301-1316.]
    [70] Schmid P,Bogdal C,Blüthgen N et al. The missing piece:sediment records in remote Mountain lakes confirm glaciers being secondary sources of persistent organic pollutants. Environmental Science&Technology,2011,45(1):203-208. DOI:10.1021/es1028052.
    [71] Pavlova PA,Zennegg M,Anselmetti FS et al. Release of PCBs from Silvretta glacier(Switzerland)investigated in lake sediments and meltwater. Environ Sci Pollut Res Int,2016,23(11):10308-10316. DOI:10.1007/s11356-015-5854-z.
    [72] Bettinetti R,Galassi S,Guilizzoni P et al. Sediment analysis to support the recent glacial origin of DDT pollution in Lake Iseo(Northern Italy). Chemosphere,2011,85(2):163-169. DOI:10.1016/j.chemosphere.2011.06.037.
    [73] Bogdal C,Schmid P,Zennegg M et al. Blast from the past:melting glaciers as a relevant source for persistent organic pollutants. Environmental Science&Technology,2009,43(21):8173-8177. DOI:10.1021/es901628x.
    [74] Salerno F,Rogora M,Balestrini R et al. Glacier melting increases the solute concentrations of Himalayan Glacial Lakes.Environ Sci Technol,2016,50(17):9150-9160. DOI:10.1021/acs.est.6b02735.
    [75] Sun S,Kang S,Huang J et al. Distribution and transportation of mercury from glacier to lake in the Qiangyong Glacier Basin,southern Tibetan Plateau,China. J Environ Sci,2016,44(6):213-223. DOI:10.1016/j.jes.2015.09.017.
    [76] Thies H,Nickus U,Mair V et al. Unexpected response of high Alpine Lake waters to climate warming. Environ Sci Technol,2007,41(21):7424-7429. DOI:10.1021%2Fes0708060.
    [77] Fortner SK,Mark BG,Mckenzie JM et al. Elevated stream trace and minor element concentrations in the foreland of receding tropical glaciers. Applied Geochemistry,2011,26(11):1792-1801. DOI:10.1016/j.apgeochem.2011.06.003.
    [78] Baron JS,Schmidt TM,Hartman MD et al. Climate-induced changes in high elevation stream nitrate dynamics. Global Change Biology,2009,15(7):1777-1789. DOI:10.1111/j.1365-2486.2009.01847.x.
    [79] Saros JE,Interlandi SJ,Doyle S et al. Are the deep chlorophyll maxima in alpine lakes primarily induced by nutrient availability,not UV Avoidance? Arctic Antarctic&Alpine Research,2005,37(4):557-563. DOI:10.1657/1523-0430(2005)037[0557:ATDCMI]2.0.CO; 2.
    [80] Slemmons KEH,Saros JE. Implications of nitrogen-rich glacial meltwater for phytoplankton diversity and productivity in alpine lakes. Limnology and Oceanography,2012,57(6):1651-1663. DOI:10.4319/lo.2012.57.6.1651.
    [81] Mcglynn G,Mackay AW,Rose NL et al. Palaeolimnological evidence of environmental change over the last 400 years in the Rwenzori Mountains of Uganda. Hydrobiologia,2010,648(1):109-122. DOI:10.1007/s10750-010-0144-8.
    [82] Lami A,Turner S,Musazzi S et al. Sedimentary evidence for recent increases in production in Tibetan plateau lakes.Hydrobiologia,2010,648(1):175-187. DOI:10.1007/s10750-010-0263-2.
    [83] Sommaruga R. When glaciers and ice sheets melt:consequences for planktonic organisms. Journal of Plankton Research,2015,37(3):509. DOI:10.1093%2Fplankt%2Ffbv027.
    [84] Fabian D,Hannes P,Ruben S. Are viruses important in the plankton of highly turbid glacier-fed lakes? Scientific Reports,2016,6:24608. DOI:10.1038/srep24608.
    [85] Koenings JP,Burkett RD,Edmundson JM. The exclusion of limnetic cladocera from turbid glacier-meltwater lakes. Ecology,1990,71(1):57-67. DOI:10.2307/1940247.
    [86] Donohue I,Garcia MJ. Impacts of increased sediment loads on the ecology of lakes. Biological Reviews,2009,84(4):517-531. DOI:10.1111/j.1469-185x.2009.00081.x.
    [87] Peter H,Sommaruga R. Shifts in diversity and function of lake bacterial communities upon glacier retreat. The ISME Journal,2016,10(7):1545-1554. DOI:10.1038/ismej.2015.245.
    [88] Jnsson M,Ranker L,Nicolle A et al. Glacial clay affects foraging performance in a Patagonian fish and cladoceran.Hydrobiologia,2011,663(1):101-108. DOI:10.1007/s10750-010-0557-4.
    [89] Cook SJ,Quincey DJ. Estimating the volume of Alpine glacial lakes. Earth Surface Dynamics Discussions,2015,3(3):909-940. DOI:10.5194/esurfd-3-909-2015.
    [90] Yao XJ,Liu SY,Sun MP et al. Volume calculation and analysis of the changes in moraine-dammed lakes in the north Himalaya:a case study of Longbasaba Lake. Journal of Glaciology,2012,58(210):753-760.
    [91] Engstrom DR,Fritz SC,Almendinger JE et al. Chemical and biological trends during lake evolution in recently deglaciated terrain. Nature,2000,408(6809):161-166. DOI:10.1038/35041500.

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