Recent glacier mass balance and area changes in the Kangri Karpo Mountains from DEMs and glacier inventories
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Published:2018-01-12
Issue:1
Volume:12
Page:103-121
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ISSN:1994-0424
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Container-title:The Cryosphere
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language:en
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Short-container-title:The Cryosphere
Author:
Wu KunpengORCID, Liu Shiyin, Jiang ZongliORCID, Xu Junli, Wei Junfeng, Guo Wanqin
Abstract
Abstract. Due to the influence of the Indian monsoon, the Kangri Karpo Mountains in the south-east of the Tibetan Plateau is in the most humid and one of the most important and concentrated regions containing maritime (temperate) glaciers. Glacier mass loss in the Kangri Karpo is an important contributor to global mean sea level rise, and changes run-off distribution, increasing the risk of glacial-lake outburst floods (GLOFs). Because of its inaccessibility and high labour costs, information about the Kangri Karpo glaciers is still limited. Using geodetic methods based on digital elevation models (DEMs) derived from 1980 topographic maps from the Shuttle Radar Topography Mission (SRTM) (2000) and from TerraSAR-X/TanDEM-X (2014), this study has determined glacier elevation changes. Glacier area and length changes between 1980 and 2015 were derived from topographical maps and Landsat TM/ETM+/OLI images. Results show that the Kangri Karpo contained 1166 glaciers with an area of 2048.50 ± 48.65 km2 in 2015. Ice cover diminished by 679.51 ± 59.49 km2 (24.9 ± 2.2 %) or 0.71 ± 0.06 % a−1 from 1980 to 2015, although nine glaciers advanced. A glacierized area of 788.28 km2, derived from DEM differencing, experienced a mean mass loss of 0.46 ± 0.08 m w.e. a−1 from 1980 to 2014. Shrinkage and mass loss accelerated significantly from 2000 to 2015 compared to 1980–2000, consistent with a warming climate.
Funder
Ministry of Science and Technology of the People's Republic of China National Natural Science Foundation of China
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Water Science and Technology
Reference90 articles.
1. Arendt, A., Bliss, A., Bolch, T., Cogley, J. G., and Gardner, A. S.: Randolph glacier inventory – a dataset of global glacier outlines. Version 5.0, University of Colorado. National Snow and Ice Data Center (NSIDC). Global Land Ice Measurements from Space (GLIMS), Boulder, CO, digital media, available at: www.glims.org/RGI/00_rgi50_TechnicalNote.pdf (last access: 12 March 2017), 2015. 2. Bao, W.-J., Liu, S.-Y., Wei, J.-F., and Guo, W.-Q.: Glacier changes during the past 40 years in the West Kunlun Shan, J. Mt. Sci., 12, 344–357, https://doi.org/10.1007/s11629-014-3220-0, 2015. 3. Benn, D. I., Bolch, T., Hands, K., Gulley, J., Luckman, A., Nicholson, L. I., Quincey, D., Thompson, S., Toumi, R., and Wiseman, S.: Response of debris-covered glaciers in the Mount Everest region to recent warming, and implications for outburst flood hazards, Earth-Sci. Rev., 114, 156–174, https://doi.org/10.1016/j.earscirev.2012.03.008, 2012. 4. Berthier, E., Arnaud, Y., Vincent, C., and Rémy, F.: Biases of SRTM in high-mountain areas: implications for the monitoring of glacier volume changes, Geophys. Res. Lett., 33, L08502, https://doi.org/10.1029/2006GL025862, 2006. 5. Berthier, E., Schiefer, E., Clarke, G. K. C., Menounos, B., and Rémy, F.: Contribution of Alaskan glaciers to sea-level rise derived from satellite imagery, Nat. Geosci., 3, 92–95, https://doi.org/10.1038/ngeo737, 2010.
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