Spatiotemporal characteristics of alpine snow and ice melt under a changing regional climate: A case study in Northwest China

2015 ◽  
Vol 358 ◽  
pp. 126-136 ◽  
Author(s):  
Changbin Li ◽  
Jiaguo Qi ◽  
Shuaibing Wang ◽  
Linshan Yang ◽  
Songbing Zou ◽  
...  
1997 ◽  
Vol 43 (145) ◽  
pp. 563-568 ◽  
Author(s):  
David M. Hannah ◽  
Glenn R. McGregor

AbstractThis pilot study adopts a computer-assisted synoptic typing methodology to evaluate the totality of climatic influences on snow- and ice-melt dynamics within a small cirque basin in the French Pyrénées. The synoptic categories identified possess contrasting large-scale atmospheric circulation patterns and surface energy budgets which generate differential ablation responses. Continental air masses yield consistently high melt. Advection of moist maritime air also produces elevated but more variable ablation due to air-mass transitions. The two observed local valley circulation types show melt to be higher under nocturnal katabatic drainage than for anabatic wind flows associated with development of daytime ridge-top cumulus.


2017 ◽  
Author(s):  
Muhammad Fraz Ismail ◽  
Wolfgang Bogacki

Abstract. Snow and glacial melt runoff are the major sources of water contribution from the high mountainous terrain of Indus river upstream of the Tarbela reservoir. A reliable forecast of seasonal water availability for the Kharif cropping season (April–September) can pave the way towards the better water management and subsequently boost the agro-economy of Pakistan. The use of degree-day models in conjunction with the satellite based remote sensing data for the forecasting of seasonal snow and ice melt runoff has proved to be a suitable approach for the data scarce regions. In the present research, Snowmelt Runoff Model (SRM) has not only been enhanced by incorporating the “glacier (G)” component but also applied for the forecast of seasonal water availability from the Upper Indus Basin (UIB). Excel based SRM + G takes into account of separate degree-day factors for snow and ice melt processes. The UIB has been divided into Upper and Lower part because of the different climatic conditions in the Tibetan plateau. The application of seasonal scenario based approach proved to be very adequate for long term water availability forecast. The comparison between different models of operational seasonal forecasts for the UIB for the period in consideration show that SRM + G tends to slightly underestimate the flow volume on average by about 2 % with an overall mean absolute error MAE of 9.6 %, while the two other approaches overestimate the Kharif flow volume on average by about 6 %. More important, the standard deviation of SRM + G forecast errors is 5.7 % only, which is an important indicator for the forecasting skill.


2014 ◽  
Vol 11 (4) ◽  
pp. 884-895 ◽  
Author(s):  
Chang-bin Li ◽  
Jia-guo Qi ◽  
Lin-shan Yang ◽  
Wen-jin Yang ◽  
Gao-feng Zhu ◽  
...  

2018 ◽  
Vol 10 (9) ◽  
pp. 1328 ◽  
Author(s):  
Ge Peng ◽  
Michael Steele ◽  
Angela Bliss ◽  
Walter Meier ◽  
Suzanne Dickinson

Information on the timing of Arctic snow and ice melt onset, sea ice opening, retreat, advance, and closing, can be beneficial to a variety of stakeholders. Sea ice modelers can use information on the evolution of the ice cover through the rest of the summer to improve their seasonal sea ice forecasts. The length of the open water season (as derived from retreat/advance dates) is important for human activities and for wildlife. Long-term averages and variability of these dates as climate indicators are beneficial to business strategic planning and climate monitoring. In this study, basic characteristics of temporal means and variability of Arctic sea ice climate indicators derived from a satellite-based climate data record from March 1979 to February 2017 melt and freeze seasons are described. Our results show that, over the Arctic region, anomalies of snow and ice melt onset, ice opening and retreat dates are getting earlier in the year at a rate of more than 5 days per decade, while that of ice advance and closing dates are getting later at a rate of more than 5 days per decade. These significant trends resulted in significant upward trends for anomalies of inner and outer ice-free periods at a rate of nearly 12 days per decade. Small but significant downward trends of seasonal ice loss and gain period anomalies were also observed at a rate of −1.48 and −0.53 days per decade, respectively. Our analyses also demonstrated that the means of these indicators and their trends are sensitive to valid data masks and regional averaging methods.


2019 ◽  
Vol 574 ◽  
pp. 760-773 ◽  
Author(s):  
Mohd. Farooq Azam ◽  
P. Wagnon ◽  
C. Vincent ◽  
AL. Ramanathan ◽  
N. Kumar ◽  
...  

1997 ◽  
Vol 43 (145) ◽  
pp. 563-568 ◽  
Author(s):  
David M. Hannah ◽  
Glenn R. McGregor

AbstractThis pilot study adopts a computer-assisted synoptic typing methodology to evaluate the totality of climatic influences on snow- and ice-melt dynamics within a small cirque basin in the French Pyrénées. The synoptic categories identified possess contrasting large-scale atmospheric circulation patterns and surface energy budgets which generate differential ablation responses. Continental air masses yield consistently high melt. Advection of moist maritime air also produces elevated but more variable ablation due to air-mass transitions. The two observed local valley circulation types show melt to be higher under nocturnal katabatic drainage than for anabatic wind flows associated with development of daytime ridge-top cumulus.


1981 ◽  
Vol 12 (4-5) ◽  
pp. 319-334 ◽  
Author(s):  
David N. Collins ◽  
Gordon J. Young

Electrical conductivity, a surrogate measure of total dissolved solids content, and discharge of meltwaters draining from two adjacent contrasting watersheds in the Rocky Mountains, Canada, were recorded continuously from mid-May – August 1979, throughout the ablation season, in order to investigate the influence of snow- and ice-melt on alpine hydrochemistry. Solute concentration varied inversely diurnally with discharge in both nival and glacial meltwaters. Solute content and discharge of the snowmelt-fed Amiskwi River declined with decreasing availability of snowcover through July, followed by increased solute content during low flows in August. In the glacially-fed Peyto Creek, conductivity decreased with increasing flow during spring snow-melt, but during ice-melt domination of flow from mid-July oscillated daily through a limited range. Snow- and ice-melt are shown to have contrasting roles in determining distinctive patterns of diurnal and seasonal temporal variations of discharge and hydrochemistry in mountain basins. Continuous monitoring of water quality is essential in characterising the hydrochemistry of alpine environments.


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