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A Comparative Study of Physico-Chemical Parameter in Glacial Melt Water, Ponkar Glacier, Nepal

DOI: 10.4236/oalib.1107160, PP. 1-10

Subject Areas: Natural Geography, Environmental Sciences, Oceanology

Keywords: Glacier, Physico-Chemical Parameters, Concentration, Ions, Upstream, Downstream

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Abstract

We conducted a detailed study in comparing physico-chemical parameters of glacier melt water between two years (2016 & 2019) in upstream sites with an elevation ranging from 4100 m to 3550 m above sea level of Ponkar glacier, Manang district, Nepal. We conducted onsite testing of physical parameter like pH, electrical conductivity, total dissolved solids, turbidity by using multiprobes and chemical parameters like anions, cations, total silica and heavy metals were analyzed following standard methods from APHA, AWWA, WEF (2012). The mean concentration of total silica was found to be higher in upstream sites than downstream. The elemental ratio Ca/Si was found to be higher in glacial melt water with low elemental values for K/Na, Na/Cl and K/Cl. The average concentration of parameters like electrical conductivity, turbidity, total hardness in glacier melt water was recorded to be higher in year 2019 than 2016. The mean concentration of anions and heavy metal was recorded to be higher in year 2016 than 2019. This study has provided a baseline information in comparing physico-chemical parameters in glacial melt water of Ponkar glacier and will be helpful in mitigating adverse impacts of climate change in Nepal’s glacier.

Cite this paper

Shrestha, S. , Bhandari, R. , Bashyal, A. and Shrestha, N. (2021). A Comparative Study of Physico-Chemical Parameter in Glacial Melt Water, Ponkar Glacier, Nepal. Open Access Library Journal, 8, e7160. doi: http://dx.doi.org/10.4236/oalib.1107160.

References

[1]  Jansson, P., Hock, R. and Schneider, T. (2003) The Concept of Glacier Storage: A Review. Journal of Hydrology, 282, 116-129. https://doi.org/10.1016/S0022-1694(03)00258-0
[2]  Kaser, G., Groshauser, M. and Marzeion, B. (2010) Contribution Potential of Glaciers to Water Availability Indifferent Climate Regimes. Proceedings of the National Academy of Sciences of the United States of America, 107, 20223-20227. https://doi.org/10.1073/pnas.1008162107
[3]  Viviroli, D., Archer, D.R. and Buytaert, W. (2011) Climate Change and Mountain Water Resources: Overview and Recommendations for Research, Management and Policy. Hydrology and Earth System Sciences, 15, 471-504. https://doi.org/10.5194/hess-15-471-2011
[4]  Bajracharya, S.R. and Shrestha, B. (2011) The Status of Glaciers in the Hindu Kush-Himalayan Region. International Centre for Integrated Mountain Development, Lalitpur.
[5]  International Centre for Integrated Mountain Development (2011) Report on the Impact of Climate Change on Water Resources and Livelihoods in the Himalayas. International Centre for Integrated Mountain Development, Lalitpur.
[6]  Bajracharya, S.R., Mool, P.K. and Shrestha, B.R. (2008) Global Climate Change and Melting of Himalayan Glaciers. In: Shastri Ranade, P., Ed., Melting Glaciers and Rising Sea Levels: Impacts and Implications, The Icfai’s University Press, Dehradun, 28-46.
[7]  Brown, G.H. (2002) Glacier Meltwater Hydrochemistry. Applied Geochemistry, 17, 855-883. https://doi.org/10.1016/S0883-2927(01)00123-8
[8]  Vasil’chuk, Yu.K. (2009) Chemical Properties of Glacial and Ground Ice. In: Khublaryan, M.G., Ed., Types and Properties of Water, Vol. II, Eolss Publishers, Paris, 265.
[9]  Bhatt, M.P., Takeuchi, N. and Acevedo, M.F. (2016) Chemistry of Supraglacial Ponds in the Debris-Covered Area of Lirung Glacier in Central Nepal Himalayas. Aquatic Geochemistry, 22, 35-64. https://doi.org/10.1007/s10498-015-9276-9
[10]  Intergovernmental Panel on Climate Change (2007) IPCC Fourth Assessment Report. Climate Change, Working Group II: Impacts, Adaptation and Vulnerability. Intergovernmental Panel on Climate Change, Geneva.
[11]  Moore, R.D. (2009) Glacier Change in Western North America: Influences on Hydrology, Geomorphic Hazards and Water Quality. Hydrological Process, 23, 42-61. https://doi.org/10.1002/hyp.7162
[12]  Singh, V.B., Ramanathan, A.L., Pottakkal, J.G., Sharma, P., Linda, A., Azam, M.F. and Chatterjee, C. (2012) Chemical Characterization of Meltwater Draining from Gangotri Glacier, Garhwal Himalaya, India. Journal of Earth System Science, 121, 625-636. https://doi.org/10.1007/s12040-012-0177-7
[13]  Gibbs, R.J. (1970) Mechanisms Controlling World Water Chemistry. Science, 170, 1088-1090. https://doi.org/10.1126/science.170.3962.1088
[14]  Nijampurkar, V.N., Sarin, M.M. and Rao, D.K. (1993) Chemical Composition of Snow and Ice from Chhota Shigri Glacier, Central Himalaya. Journal of Hydrology, 151, 19-34. https://doi.org/10.1016/0022-1694(93)90246-6
[15]  Ives, J.D., Shrestha, R.B. and Mool, P.K. (2010) Formation of Glacial Lakes in the Hindu Kush-Himalayas and GLOF Risk Assessment. International Centre for Integrated Mountain Development, Kathmandu.
[16]  Thapa, K., Shrestha, S., Sharma, K., Shrestha, N., Bhandari, R., Bashyal, A. and Shrestha, S. (2019) Assessment of Physico-Chemical Parameters of Meltwater of Ponkar Glacier, Manang, Nepal. Hydrology: Current Research, 10, 313.
[17]  Apha, A.W., Greenberg, W.I.A., Clesceri, L. and Eaton, A. (2012) Standard Methods for the Examination of Water and Wastewater. American Public Health Association, Washington DC.
[18]  Shrestha, R. (2016) Hydro-Chemical Characterization of Glacier Meltwater of Ponkar Glacier, Manang, Nepal. B.Sc. Environmental Science, Kathmandu University, Dhulikhel. (Unpublished)
[19]  Freeza, R.A. and Cherry, J.A. (1979) Groundwater. Prentice-Hall Inc., Englewood Cliffs.
[20]  Tranter, M., Brown, G.H., Sharp, M.J. and Gurnell, A.M. (1993) A Conceptual Model of Solute Acquisition by Alpine Glacial Meltwaters. Journal of Glaciology, 39, 573-581. https://doi.org/10.3189/S0022143000016464
[21]  Singh, P., Haritashya, U.K., Ramasastri, K.S. and Kumar, N. (2005) Diurnal Variations in Discharge and Suspended Sediment Concentration, Including Runoff-Delaying Characteristics, of the Gangotri Glacier in the Garhwal Himalayas. Hydrological Processes, 19, 1445-1457. https://doi.org/10.1002/hyp.5583
[22]  Anderson, S.P., Drever, J.I. and Humphrey, N.F. (1997) Chemical Weathering in Glacial Environments. Geology, 25, 399-402. https://doi.org/10.1130/0091-7613(1997)025%3C0399:CWIGE%3E2.3.CO;2
[23]  Singh, A. K. and Hasnain, S. I. (1998) Major Ion Chemistry and Weathering Control in a High Altitude Basin: Alaknanda River, Garhwal Himalaya, India. Hydrological Sciences Journal, 43, 825-843. https://doi.org/10.1080/02626669809492181
[24]  Tuladhar, A., Kayastha. R.B., Gurung, S. and Shrestha, A. (2015) Hydro-Chemical Characterization of Glacial Melt Waters Draining from Langtang Valley, Nepal. Journal of Water Resource and Protection, 7, 605-613. http://dx.doi.org/10.4236/jwarp.2015.78049
[25]  Bhandari, R., Sharma, S., Merz, J. and Garton, R. (2015) Hydro-Chemistry of Gokyo Valley, Sagarmatha (Everest) National Park, Nepal. Journal of Geoscience and Environment Protection, 3, 74-81. http://dx.doi.org/10.4236/gep.2015.39007
[26]  Chalise, S.R., Shrestha, M.L., Bajracharya, O.R. and Shrestha, A.B. (2006) Climate Change Impacts on Glacial Lakes and Glacierized Basins in Nepal and Implications for Water Resources. Proceedings of the 5th FRIEND World Conference, Havana, November 2006, 460-465.

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