High-Resolution Coupled Climate Runoff Simulations of Seasonal Snowfall over Colorado: A Process Study of Current and Warmer Climate

被引:409
作者
Rasmussen, Roy [1 ]
Liu, Changhai [1 ]
Ikeda, Kyoko [1 ]
Gochis, David [1 ]
Yates, David [1 ]
Chen, Fei [1 ]
Tewari, Mukul [1 ]
Barlage, Michael [1 ]
Dudhia, Jimy [1 ]
Yu, Wei [1 ]
Miller, Kathleen [1 ]
Arsenault, Kristi [2 ]
Grubisic, Vanda [3 ]
Thompson, Greg [1 ]
Gutmann, Ethan [1 ]
机构
[1] Natl Ctr Atmospher Res, Boulder, CO 80307 USA
[2] George Mason Univ, Fairfax, VA 22030 USA
[3] Univ Vienna, Vienna, Austria
基金
美国国家科学基金会;
关键词
ASSIMILATION SYSTEM NLDAS; WESTERN UNITED-STATES; WATER EQUIVALENT; STORM TRACKS; ICE-SHEET; MODEL; PRECIPITATION; IMPLEMENTATION; SNOWPACK; FUTURE;
D O I
10.1175/2010JCLI3985.1
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Climate change is expected to accelerate the hydrologic cycle, increase the fraction of precipitation that is rain, and enhance snowpack melting. The enhanced hydrological cycle is also expected to increase snowfall amounts due to increased moisture availability. These processes are examined in this paper in the Colorado Headwaters region through the use of a coupled high-resolution climate-runoff model. Four high-resolution simulations of annual snowfall over Colorado are conducted. The simulations are verified using Snowpack Telemetry (SNOTEL) data. Results are then presented regarding the grid spacing needed for appropriate simulation of snowfall. Finally, climate sensitivity is explored using a pseudo-global warming approach. The results show that the proper spatial and temporal depiction of snowfall adequate for water resource and climate change purposes can be achieved with the appropriate choice of model grid spacing and parameterizations. The pseudo-global warming simulations indicate enhanced snowfall on the order of 10%-25% over the Colorado Headwaters region, with the enhancement being less in the core headwaters region due to the topographic reduction of precipitation upstream of the region (rain-shadow effect). The main climate change impacts are in the enhanced melting at the lower-elevation bound of the snowpack and the increased snowfall at higher elevations. The changes in peak snow mass are generally near zero due to these two compensating effects, and simulated wintertime total runoff is above current levels. The 1 April snow water equivalent (SWE) is reduced by 25% in the warmer climate, and the date of maximum SWE occurs 2-17 days prior to current climate results, consistent with previous studies.
引用
收藏
页码:3015 / 3048
页数:34
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