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Evaluating the sensitivity of glacier to climate by using stable water isotopes and remote sensing

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Abstract

Glaciers in the Himalayan Mountain system are undergoing rapid retreat, and the global climate change has a significant impact on it. In the present study, we used stable water isotope and remote sensing data to understand the impact of climate on melting behavior of some high-altitude glaciers in two glacier-fed basins of western Himalaya, India. Glacier samples were collected from four major glaciers of Liddar (Kashmir region) and Suru basins (Ladakh region) during melting season from May 2012 to November 2013 for δ18O and δ2H. It was observed that the glacier samples from Suru basin were more depleted in 18O and 2H (−10.9 to −16.2‰ and −73 to −128‰) than the glaciers of Liddar basin (−8.2 to −14.9‰ and −52 to −102‰). However, the d-excess of the glacier samples in Suru basin was lower (13.5–21.6‰) than the glaciers of Liddar basin (17–28‰). It was observed that the temporal changes in weather pattern strongly influence the isotopic composition of the glaciers with progressive decrease and increase in δ18O (or δ2H) with the increase in ambient temperature and rainfall, respectively. The results suggest that during the sunny days of August and September, the glaciers are melting at higher altitudes (3900–4172 m) in the accumulation zone, reflecting that the glaciers of Liddar basin are not the ideal sites for the ice coring for paleoclimatological studies. The study also revealed that 20% glacier extent (glacierized area) in Liddar basin has been lost in <35 years, which is quite higher than that of Suru basin (2%).

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References

  • Arnason B (1976) Groundwater systems in Iceland traced by deuterium. Soc Sci Isl 42:236

    Google Scholar 

  • Bajracharya SR, Mool PK (2006) Impact of global climate change from 1970s to 2000s on the glaciers and glacial lakes in Tamor Basin eastern Nepal ICIMOD

  • Beniston M (2003) Climatic change in mountain regions: a review of possible impacts. Clim Change 59(1–2):5–31

    Article  Google Scholar 

  • Bolch T, Yao T, Kang S, Buchroithner MF, Scherer D, Maussion F, Huintjes E, Schneider C (2010) A glacier inventory for the western Nyainqentanglha Range and Nam Co Basin Tibet and glacier changes 1976–2009. Cryosphere 4:419–433

    Article  Google Scholar 

  • Clark I, Fritz P (1997) Environmental Isotopes in hydrogeology. Lewis Publishers, New York

    Google Scholar 

  • Coplen TB (1996) Atomic weights of the elements 1995 (technical report). Pure Appl Chem 68(12):2339–2359

    Article  Google Scholar 

  • Dansgaard W (1964) Stable isotopes in precipitation. Tellus 16:436–468

    Article  Google Scholar 

  • Ding Y, Liu S, Li J, Shangguan D (2006) The retreat of glaciers in response to recent climate warming in western China. Ann Glaciol 43(1):97–105

    Article  Google Scholar 

  • Epstein S, Mayeda TK (1953) Variations of the 18O/16O ratio in natural waters. Geochim Cosmochim Acta 4(213):1702–1703

    Google Scholar 

  • Gat JR (2010) Isotope hydrology: a study of water cycle. Series on environmental and science, vol 6. Imperial College Press, London, UK, p 190

  • Hasnain SI (2002) Himalayan glaciers meltdown: impact on South Asian Rivers. Int Assoc Hydrol Sci Publ 274:417–423

    Google Scholar 

  • He Y, Yao T, Yang M et al (2000) The new results of ~180 studies on the system of precipitation, snow-ice and glacial runoff at the Glacier Baishui No. 1 region in Mt. Yulong, China. J Glaciol Geacryol 22(4):391–393

    Google Scholar 

  • Immerzeel WW, Droogers P, De Jong SM, Bierkens MFP (2009) Large-scale monitoring of snow cover and runoff simulation in Himalayan river basins using remote sensing. Remote Sens Environ 113(1):40–49

    Article  Google Scholar 

  • Immerzeel W, Van Beek LPH, Bierkens MFP (2010) Climate change will affect the Asian water towers. Science 328(5984):1382–1385

    Article  Google Scholar 

  • Ingraham NL, Taylor BE (1991) Light stable isotope systematics of large-scale hydrologic regimes in California and Nevada. Water Resour Res 27:77–90

    Article  Google Scholar 

  • IPCC (2007) Climate change 2007 the scientific basis. Cambridge University Press, Cambridge

    Google Scholar 

  • Jeelani Gh, Feddema J, van der Veen CJ, Stearns L (2012) Role of snow and glacier melt in controlling river hydrology Liddar watershed in the (western Himalaya) under current and future climate. Water Resour Res 48(W12508):1–16

    Google Scholar 

  • Jeelani G, Saravana Kumar U, Kumar B (2013) Variation of δ18O and δD in precipitation and stream waters across the Kashmir Himalaya (India) to distinguish and estimate the seasonal sources of stream flow. J Hydrol 481:157–165

    Article  Google Scholar 

  • Jeelani G, Shah RA, Jacob N, Deshpande RD (2017a) Estimation of snow and glacier melt contribution to Liddar stream in a mountainous catchment, western Himalaya: an isotopic approach. J Isot Environ Health Stud 53(1):18–35

    Article  Google Scholar 

  • Jeelani G, Shah RA, Fryar AE, Deshpande RD, Mukherjee A, Jerome P (2017b) Hydrological processes in glacierized high altitude basins of western Himalaya. Hydrogeol J. doi:10.1007/s10040-017-1666-1

  • Jeelani G, Deshpande RD, Shah RA, Hassan W (2017c) Influence of southwest monsoons in the Kashmir Valley western Himalayas. J Isot Environ Health Stud vol 53:400–412. doi:10.1080/10256016.2016.1273224

    Article  Google Scholar 

  • Kaser G, Cogley JG, Dyurgerov MB, Meier MF, Ohmura A (2006) Mass balance of glaciers and ice caps consensus estimates for 1961–2004. Geophys Res Lett 33(19). doi:10.1029/2006GL027511

  • Kehrwald NM, Thompson LG, Tandong Y, Mosley-Thompson E, Schotterer U, Alfimov V, Beer J, Eikenberg J, Davis ME (2008) Mass loss on Himalayan glacier endangers water resources. Geophys Res Lett 35:L22503

    Article  Google Scholar 

  • Khan AA, Pant NC, Sarkar A, Tandon SK, Thamban M, Mahalinganathan K (2017) The Himalayan cryosphere: a critical assessment and evaluation of glacial melt fraction in the Bhagirathi basin. Geosci Front 8(1):107–115

    Article  Google Scholar 

  • Kulkarni AV, Bahuguna IM, Rathore B, Singh SK, Randhawa SS, Sood RK, Dhar S (2007) Glacial retreat in Himalaya using Indian remote sensing satellite data. Curr Sci 92(1):69–74

    Google Scholar 

  • Kumar B, Rai SP, Saravana Kumar U, Verma SK, Garg P, Vijaya Kumar SV, Jaiswal R, Purendra BK, Kumar SR, Pande NG (2010) Isotopic characteristics of Indian precipitation. Water Resour Res 46:W12548

    Article  Google Scholar 

  • Li Z, Yao T, Tian L (2006) Variations of δ18O in precipitation from the Muztagata Glacier East Pamirs. Sci China Ser D Earth Sci 49(1):36–42

    Article  Google Scholar 

  • Maurya P, Aguiar AP, Pascoal A (2009) Marine vehicle path following using inner-outer loop control. IFAC Proc 42(18):38–43

    Article  Google Scholar 

  • Mayewski PA, Jeschke PA (1979) Himalayan and trans Himalayan glacier fluctuations since AD 1812. Arct Alp Res 11:267–287

    Article  Google Scholar 

  • Moran TA, Marshall SJ, Evans EC, Sinclair KE (2007) Altitudinal gradients of stable isotopes in lee-slope precipitation in the Canadian Rocky Mountains. Arct Antarct Alp Res 39(3):455–467

    Article  Google Scholar 

  • Pande K, Padia JT, Ramesh R, Sharma KK (2002) Stable isotope systematics of surface water bodies in the Himalayan and Trans Himalayan (Kashmir) region. Earth Planet Sci Lett 109:109–115

    Google Scholar 

  • Paul F, Barrand NE, Baumann S, Berthier E, Bolch T, Casey K, Frey H, Joshi SP, Konovalov V, Le Bris R, Molg N, Nosenko G, Nuth C, Pope A, Racoviteanu A, Rastner P, Raup B, Scharrer K, Steffen S, Winsvold S (2013) On the accuracy of 10 glacier outlines derived from remote-sensing data. Ann Glaciol 54(63):171–182

    Article  Google Scholar 

  • Penna D, Engel M, Bertoldi G, Comiti F (2017) Towards a tracer-based conceptualization of meltwater dynamics and streamflow response in a glacierized catchment. Hydrol Earth Syst Sci 21(1):23–41

    Article  Google Scholar 

  • Poage MA, Chamberlain CP (2001) Empirical relationships between elevation and the stable isotope composition of precipitation and surface waters considerations for studies of paleo elevation change. Am J Sci 301:1–15

    Article  Google Scholar 

  • Prasad AK, Yang KHS, El-Askary H, Kafatos M (2009) Melting of major glaciers in the western Himalayas evidence of climatic changes from long term MSU derived tropospheric temperature trend (1979–2008). Ann Geophys 27(12):4505–4519

    Article  Google Scholar 

  • Rai SP, Thayyen RJ, Purushothaman P, Kumar B (2016) Isotopic characteristics of cryospheric waters in parts of Western Himalayas  India. Environ Earth Sci 75:600. doi:10.1007/s12665-016-5417-8

  • Raina VK (2013) State of art review of glacial studies, glacial retreat and climate change. By Ministry of state Environment and Forestry (MOEF) report Government of India, New Delhi

  • Raina VK, Sangewar C (2007) Siachen glacier of Karakoram mountains, Ladakh—its secular retreat. J Geol Soc India 70:11–16

    Google Scholar 

  • Rodgers P, Soulsby C, Waldron S, Tetzlaff D (2005) Using stable isotope tracers to assess hydrological flow paths, residence times and landscape influences in a nested mesoscale catchment. Hydrol Earth Syst Sci Dis 9(3):139–155

    Article  Google Scholar 

  • Rozanski K, Araguas-Araguas L, Gonfiantini R (1993) Isotopic patterns in modern global precipitation. Geophys Monogr Am Geophys Union 78:1–36

    Google Scholar 

  • Sangewar CV, Shukla SP (2009) Inventory of the Himalayan Glaciers a Contribution to the International Hydrological Programme. Geological Survey of India, Special Publication No. 34, 594

  • Scherler D, Bookhagen B, Strecker MR (2011) Spatially variable response of Himalayan glaciers to climate change affected by debris cover. Nat Geosci. doi:10.1038/ngeo1068

    Google Scholar 

  • Shi Y, Liu S (2000) Estimation on the response of glaciers in China to the global warming in the 21st century. Chin Sci Bull 45(7):668–672

    Article  Google Scholar 

  • Siegenthaler U, Oeschger H (1980) Correlation of 18O in precipitation with temperature and altitude. Nature 285:314–317

    Article  Google Scholar 

  • Smith GI, Friedman I, Klieforth HE, Hardcastle K (1979) Aerial distribution of deuterium in eastern California precipitation. J Appl Meteorol 18:172–188

    Article  Google Scholar 

  • Thayyen RJ, Gergan JT (2010) Role of glaciers in watershed hydrology: a preliminary study of a Himalayan Catchment. Cryosphere 4:115–128

    Article  Google Scholar 

  • Upadhyay DS (1995) Cold climate hydrometeorology. New Age International Publishers, New York

    Google Scholar 

  • Viviroli D, Archer DR, Buytaert W, Fowler HJ, Greenwood GB, Hamlet AF, Huang Y, Koboltschnig G, Litaor MI, López Moreno JI, Lorentz S, Schädler B, Schreier H, Schwaigr K, Vuille M, Woods R (2011) Climate change and mountain water resources: overview and recommendations for research, management and policy. Hydrol Earth Syst Sci 15:471–504

    Article  Google Scholar 

  • Windhorst D, Waltz T, Timbe E, Frede HG, Breuer L (2013) Impact of elevation and weather patterns on the isotopic composition of precipitation in a tropical montane rainforest. Hydrol Earth Syst Sci 17:409–419

    Article  Google Scholar 

  • Yao T, Wang Y, Liu S, Pu J, Shen Y, Lu A (2004) Recent glacial retreat in High Asia in China and its impact on water resource in Northwest China. Sci China Ser D Earth Sci 47(12):1065–1075

    Article  Google Scholar 

  • Yao TD, Zhou H, Yang XX (2009) Indian monsoon influences altitude effect of δ18O in precipitation/river water on the Tibetan Plateau. Sci Bull 54:2724–2731

    Article  Google Scholar 

Download references

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Correspondence to Ghulam Jeelani.

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Lone, S.A., Jeelani, G., Deshpande, R.D. et al. Evaluating the sensitivity of glacier to climate by using stable water isotopes and remote sensing. Environ Earth Sci 76, 598 (2017). https://doi.org/10.1007/s12665-017-6937-6

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