Glacial lake outburst flood hazard under current and future conditions: worst-case scenarios in a transboundary Himalayan basin

被引:22
作者
Allen, Simon K. [1 ,2 ]
Sattar, Ashim [1 ]
King, Owen [3 ]
Zhang, Guoqing [4 ]
Bhattacharya, Atanu [3 ,5 ]
Yao, Tandong [4 ]
Bolch, Tobias [3 ]
机构
[1] Univ Zurich, Dept Geog, CH-8057 Zurich, Switzerland
[2] Univ Geneva, Inst Environm Sci, CH-1205 Geneva, Switzerland
[3] Univ St Andrews, Sch Geog & Sustainable Dev, St Andrews KY16 9AL, Scotland
[4] Chinese Acad Sci, Inst Tibetan Plateau Res, State Key Lab Tibetan Plateau Earth Syst Environm, Beijing 100101, Peoples R China
[5] JIS Univ, Dept Earth Sci & Remote Sensing, Kolkata 700109, India
基金
瑞士国家科学基金会;
关键词
HIGH-MOUNTAIN ASIA; LAND-TERMINATING GLACIERS; MORAINE-DAMMED LAKES; MASS CHANGES; RIVER-BASIN; RISK; REGION; PERMAFROST; INVENTORY; EVOLUTION;
D O I
10.5194/nhess-22-3765-2022
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Glacial lake outburst floods (GLOFs) are a major concern throughout High Mountain Asia, where societal impacts can extend far downstream. This is particularly true for transboundary Himalayan basins, where risks are expected to further increase as new lakes develop. Given the need for anticipatory approaches to disaster risk reduction, this study aims to demonstrate how the threat from a future lake can be feasibly assessed alongside that of worst-case scenarios from current lakes, as well as how this information is relevant for disaster risk management. We have focused on two previously identified dangerous lakes (Galongco and Jialongco), comparing the timing and magnitude of simulated worst-case outburst events from these lakes both in the Tibetan town of Nyalam and downstream at the border with Nepal. In addition, a future scenario has been assessed, whereby an avalanche-triggered GLOF was simulated for a potential large new lake forming upstream of Nyalam. Results show that large (> 20x10(6) m(3)) rock and/or ice avalanches could generate GLOF discharges at the border with Nepal that are more than 15 times larger than what has been observed previously or anticipated based on more gradual breach simulations. For all assessed lakes, warning times in Nyalam would be only 5-11 min and 30 min at the border. Recent remedial measures undertaken to lower the water level at Jialongco would have little influence on downstream impacts resulting from a very large-magnitude GLOF, particularly in Nyalam where there has been significant development of infrastructure directly within the high-intensity flood zone. Based on these findings, a comprehensive approach to disaster risk management is called for, combining early warning systems with effective land use zoning and programmes to build local response capacities. Such approaches would address the current drivers of GLOF risk in the basin while remaining robust in the face of worst-case, catastrophic outburst events that become more likely under a warming climate.
引用
收藏
页码:3765 / 3785
页数:21
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共 90 条
  • [51] r.avaflow v1, an advanced open-source computational framework for the propagation and interaction of two-phase mass flows
    Mergili, Martin
    Fischer, Jan-Thomas
    Krenn, Julia
    Pudasaini, Shiva P.
    [J]. GEOSCIENTIFIC MODEL DEVELOPMENT, 2017, 10 (02) : 553 - 569
  • [52] On the influence of debris cover on glacier morphology: How high-relief structures evolve from smooth surfaces
    Moelg, Nico
    Ferguson, James
    Bolch, Tobias
    Vieli, Andreas
    [J]. GEOMORPHOLOGY, 2020, 357
  • [53] An inventory of historical glacial lake outburst floods in the Himalayas based on remote sensing observations and geomorphological analysis
    Nie, Yong
    Liu, Qiao
    Wang, Jida
    Zhang, Yili
    Sheng, Yongwei
    Liu, Shiyin
    [J]. GEOMORPHOLOGY, 2018, 308 : 91 - 106
  • [54] A regional-scale assessment of Himalayan glacial lake changes using satellite observations from 1990 to 2015
    Nie, Yong
    Sheng, Yongwei
    Liu, Qiao
    Liu, Linshan
    Liu, Shiyin
    Zhang, Yili
    Song, Chunqiao
    [J]. REMOTE SENSING OF ENVIRONMENT, 2017, 189 : 1 - 13
  • [55] Northern Hemisphere permafrost map based on TTOP modelling for 2000-2016 at 1 km2 scale
    Obu, Jaroslav
    Westermann, Sebastian
    Bartsch, Annett
    Berdnikov, Nikolai
    Christiansen, Hanne H.
    Dashtseren, Avirmed
    Delaloye, Reynald
    Elberling, Bo
    Etzelmueller, Bernd
    Kholodov, Alexander
    Khomutov, Artem
    Kaab, Andreas
    Leibman, Marina O.
    Lewkowicz, Antoni G.
    Panda, Santosh K.
    Romanovsky, Vladimir
    Way, Robert G.
    Westergaard-Nielsen, Andreas
    Wu, Tonghua
    Yamkhin, Jambaljav
    Zou, Defu
    [J]. EARTH-SCIENCE REVIEWS, 2019, 193 : 299 - 316
  • [56] Contrasting surface velocities between lake- and land-terminating glaciers in the Himalayan region
    Pronk, Jan Bouke
    Bolch, Tobias
    King, Owen
    Wouters, Bert
    Benn, Douglas, I
    [J]. CRYOSPHERE, 2021, 15 (12) : 5577 - 5599
  • [57] A Multi-Phase Mass Flow Model
    Pudasaini, Shiva P.
    Mergili, Martin
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-EARTH SURFACE, 2019, 124 (12) : 2920 - 2942
  • [58] Early recognition of glacial lake hazards in the Himalaya using remote sensing datasets
    Quincey, D. J.
    Richardson, S. D.
    Luckman, A.
    Lucas, R. M.
    Reynolds, J. M.
    Hambrey, M. J.
    Glasser, N. F.
    [J]. GLOBAL AND PLANETARY CHANGE, 2007, 56 (1-2) : 137 - 152
  • [59] Observed changes in surface air temperature and precipitation in the Hindu Kush Himalayan region over the last 100-plus years
    Ren Yu-Yu
    Ren Guo-Yu
    Sun Xiu-Bao
    Shrestha, Arun Bhakta
    You Qing-Long
    Zhan Yun-Jian
    Rajbhandari, Rupak
    Zhang Pan-Feng
    Wen Kang-Min
    [J]. ADVANCES IN CLIMATE CHANGE RESEARCH, 2017, 8 (03) : 148 - 156
  • [60] An overview of glacial hazards in the Himalayas
    Richardson, SD
    Reynolds, JM
    [J]. QUATERNARY INTERNATIONAL, 2000, 65-6 : 31 - 47