The Andes Cordillera. Part I: snow distribution, properties, and trends (1979-2014)

被引:43
作者
Mernild, Sebastian H. [1 ,2 ,6 ]
Liston, Glen E. [3 ]
Hiemstra, Christopher A. [4 ]
Malmros, Jeppe K. [5 ]
Yde, Jacob C. [6 ]
McPhee, James [7 ,8 ]
机构
[1] Univ Magallanes, Antarctic & Subantarctic Program, Punta Arenas, Chile
[2] Ctr Estudios Avanzados Zonas Aridas, La Serena, Chile
[3] Colorado State Univ, Cooperat Inst Res Atmosphere, Ft Collins, CO 80523 USA
[4] US Army, Cold Reg Res & Engn Lab, Ft Wainwright, AK USA
[5] Univ Copenhagen, Dept Geosci & Nat Resource Management, Copenhagen, Denmark
[6] Sogn & Fjordane Univ Coll, Fac Sci & Engn, Postboks 133, N-6851 Sogndal, Norway
[7] Univ Chile, Fac Ciencias Fis & Matemat, Dept Civil Engn, Santiago, Chile
[8] Univ Chile, Fac Ciencias Fis & Matemat, Adv Min Technol Ctr, Santiago, Chile
关键词
Andes Cordillera; modelling; NASA MERRA; MODIS; SnowModel; snow; snow classification; South America; SURFACE MASS-BALANCE; RIVER DRAINAGE-BASIN; AMMASSALIK ISLAND; WATER EQUIVALENT; ENERGY-BALANCE; UPPER TREELINE; CLIMATE-CHANGE; CENTRAL CHILE; MELT; GLACIER;
D O I
10.1002/joc.4804
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Snow cover presence, duration, properties, and water amount play a major role in Earth's climate system through its impact on the surface energy budget. Snow cover conditions and trends (1979-2014) were simulated for South America-for the entire Andes Cordillera. Recent data sets and SnowModel developments allow relatively high-resolutions of 3-h time step and 4-km horizontal grid increment for this domain. US Geological Survey's Global Multi-resolution Terrain Elevation Data 2010 topography, Global Land Cover (GlobCover), Randolph Glacier Inventory (v. 4.0) glacier, and NASA modern-era retrospective analysis for research and applications data sets were used to simulate first-order atmospheric forcing (e.g. near-surface air temperature and precipitation, including the fraction of precipitation falling as snow) and terrestrial snow characteristics (e.g. snow cover days, snow water equivalent depth, and snow density). Simulated snow conditions were verified against moderate-resolution imaging spectroradiometer-derived snow cover extent and 3064 individual direct observations of snow depths. Regional variability in mean annual air temperature occurred: positive trends in general were seen in the high Andes Cordillera, and negative trends at relatively lower elevations both east and west of the Cordillera. Snow precipitation showed more heterogeneous patterns than air temperature due to the influence from atmospheric conditions, topography, and orography. Overall, for the Cordillera, much of the area north of 23 degrees S had a decrease in the number of snow cover days, while the southern half experienced the opposite. The snow cover extent changed approximate to-15% during the simulation period, mostly between the elevations of approximate to 3000 and 5000m above sea level (a.s.l.). However, below 1000ma.s.l. (in Patagonia) the snow cover extent increased. The snow properties varied over short distances both along and across the Andes Cordillera.
引用
收藏
页码:1680 / 1698
页数:19
相关论文
共 84 条
[1]  
[Anonymous], 2013, SUMM POL MAK
[2]   Spatio-temporal rainfall patterns in Southern South America [J].
Aravena, Juan-Carlos ;
Luckman, Brian H. .
INTERNATIONAL JOURNAL OF CLIMATOLOGY, 2009, 29 (14) :2106-2120
[3]   Altitudinal gradients, midwinter melt, and wind effects on snow accumulation in semiarid midlatitude Andes under La Ni∼ na conditions [J].
Ayala, A. ;
McPhee, J. ;
Vargas, X. .
WATER RESOURCES RESEARCH, 2014, 50 (04) :3589-3594
[4]   STATE OF THE CLIMATE IN 2013 [J].
Blunden, Jessica ;
Arndt, Derek S. ;
Aaron-Morrison, Arlene P. ;
Ackerman, Steven A. ;
Albanil, Adelina ;
Alfaro, Eric J. ;
Allan, Rob ;
Alves, Lincoln M. ;
Amador, Jorge A. ;
Ambenje, Peter ;
Anderson, L. ;
Andreassen, L. M. ;
Antonov, John ;
Arendt, A. ;
Arevalo, Juan ;
Arndt, Derek S. ;
Ashik, I. ;
Atheru, Zachary ;
Augustine, John ;
Baklanov, A. ;
Banzon, Viva ;
Baringer, Molly O. ;
Barreira, Sandra ;
Barriopedro, David ;
Baxter, Stephen ;
Bazo, Juan ;
Becker, Andreas ;
Behrenfeld, Michael J. ;
Bell, Gerald D. ;
Benedetti, Angela ;
Bernhard, Germar ;
Berrisford, Paul ;
Berry, David I. ;
Bhatt, U. S. ;
Bidegain, Mario ;
Bindoff, Nathan ;
Bissolli, Peter ;
Blake, Eric S. ;
Blenman, Rosalind C. ;
Blunden, Jessica ;
Bosilovich, Michael ;
Box, J. E. ;
Boyer, Tim ;
Braathen, Geir O. ;
Bromwich, David H. ;
Brown, Glenroy ;
Brown, L. C. ;
Brown, R. ;
Bruhwiler, Lori ;
Bulygina, Olga N. .
BULLETIN OF THE AMERICAN METEOROLOGICAL SOCIETY, 2014, 95 (07) :S1-S257
[5]  
Bosilovich M., 2008, NASAS MODERN ERA RET
[6]   Evaluation of global precipitation in reanalyses [J].
Bosilovich, Michael G. ;
Chen, Junye ;
Robertson, Franklin R. ;
Adler, Robert F. .
JOURNAL OF APPLIED METEOROLOGY AND CLIMATOLOGY, 2008, 47 (09) :2279-2299
[7]   Global Energy and Water Budgets in MERRA [J].
Bosilovich, Michael G. ;
Robertson, Franklin R. ;
Chen, Junye .
JOURNAL OF CLIMATE, 2011, 24 (22) :5721-5739
[8]   Arctic Climate and Water Change: Model and Observation Relevance for Assessment and Adaptation [J].
Bring, Arvid ;
Destouni, Georgia .
SURVEYS IN GEOPHYSICS, 2014, 35 (03) :853-877
[9]  
Bruland O, 2004, NORD HYDROL, V35, P191
[10]   Role of land-surface changes in Arctic summer warming [J].
Chapin, FS ;
Sturm, M ;
Serreze, MC ;
McFadden, JP ;
Key, JR ;
Lloyd, AH ;
McGuire, AD ;
Rupp, TS ;
Lynch, AH ;
Schimel, JP ;
Beringer, J ;
Chapman, WL ;
Epstein, HE ;
Euskirchen, ES ;
Hinzman, LD ;
Jia, G ;
Ping, CL ;
Tape, KD ;
Thompson, CDC ;
Walker, DA ;
Welker, JM .
SCIENCE, 2005, 310 (5748) :657-660