Satellite-based modeling of permafrost temperatures in a tundra lowland landscape

被引:75
作者
Langer, Moritz [1 ]
Westermann, Sebastian [2 ]
Heikenfeld, Max [1 ]
Dorn, Wolfgang [1 ]
Boike, Julia [1 ]
机构
[1] Alfred Wegener Inst Polar & Marine Res, Potsdam, Germany
[2] Univ Oslo, Inst Geog, Oslo, Norway
关键词
Permafrost modeling; Thermal state of permafrost; Thaw depth; MODIS; Land surface temperature; GlobSnow; SUMMER SURFACE TEMPERATURES; ERA-INTERIM REANALYSIS; WET POLYGONAL TUNDRA; ARCTIC TUNDRA; SNOW-COVER; TEMPORAL VARIATIONS; AIR TEMPERATURES; NORTHERN SIBERIA; ENERGY BALANCE; ACTIVE LAYER;
D O I
10.1016/j.rse.2013.03.011
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Remote sensing offers great potential for detecting changes of the thermal state of permafrost and active layer dynamics in the context of Arctic warming. This study presents a comprehensive feasibility analysis of satellite-based permafrost modeling for a typical lowland tundra landscape in the Lena River Delta, Siberia. We assessed the performance of a transient permafrost model which is forced by time series of land surface temperatures (LSTs) and snow water equivalents (SWEs) obtained from MODIS and GlobSnow products. Both the satellite products and the model output were evaluated on the basis of long-term field measurements from the Samoylov permafrost observatory. The model was found to successfully reproduce the evolution of the permafrost temperature and freeze-thaw dynamics when calibrated with ground measurements. Monte-Carlo simulations were performed in order to evaluate the impact of inaccuracies in the model forcing and uncertainties in the parameterization. The sensitivity analysis showed that a correct SWE forcing and parameterization of the snow's thermal properties are essential for reliable permafrost modeling. In the worst case, the bias in the modeled permafrost temperatures can amount to 5 degrees C. For the thaw depth, a maximum uncertainty of about +/- 15 cm is found due to possible uncertainties in the soil composition. (C) 2013 Elsevier Inc. All rights reserved.
引用
收藏
页码:12 / 24
页数:13
相关论文
共 77 条
[1]  
ACIA, 2004, IMP WARM ARCT ARCT C, V1
[2]   Thawing permafrost and thicker active layers in sub-arctic Sweden [J].
Akerman, H. Jonas ;
Johansson, Margareta .
PERMAFROST AND PERIGLACIAL PROCESSES, 2008, 19 (03) :279-292
[3]  
[Anonymous], 2011, Snow, Water, Ice, and Permafrost in the Arctic (SWIPA): Climate Change and the Cryosphere
[4]  
[Anonymous], 1998, General Geocryology, DOI DOI 10.1017/CBO9780511564505
[5]   Recent Northern Hemisphere snow extent: A comparison of data derived from visible and microwave satellite sensors [J].
Armstrong, RL ;
Brodzik, MJ .
GEOPHYSICAL RESEARCH LETTERS, 2001, 28 (19) :3673-3676
[6]   Temporal and spatial variability of the beginning and end of daily spring freeze/thaw cycles derived from scatterometer data [J].
Bartsch, Annett ;
Kidd, Richard A. ;
Wagner, Wolfgang ;
Bartalis, Zoltan .
REMOTE SENSING OF ENVIRONMENT, 2007, 106 (03) :360-374
[7]  
Boike J., 2012, RECARBONIZATION BIOS, P159, DOI DOI 10.1007/978-94-007-4159-1_8
[8]  
Boike J., 2012, Biogeosciences Discuss, V9, P13627, DOI [10.5194/bgd-9-13627-2012, DOI 10.5194/BGD-9-13627-2012]
[9]   Climatology and summer energy and water balance of polygonal tundra in the Lena River Delta, Siberia [J].
Boike, Julia ;
Wille, Christian ;
Abnizova, Anna .
JOURNAL OF GEOPHYSICAL RESEARCH-BIOGEOSCIENCES, 2008, 113 (G3)
[10]   The Changing Face of Arctic Snow Cover: A Synthesis of Observed and Projected Changes [J].
Callaghan, Terry V. ;
Johansson, Margareta ;
Brown, Ross D. ;
Groisman, Pavel Ya ;
Labba, Niklas ;
Radionov, Vladimir ;
Barry, Roger G. ;
Bulygina, Olga N. ;
Essery, Richard L. H. ;
Frolov, D. M. ;
Golubev, Vladimir N. ;
Grenfell, Thomas C. ;
Petrushina, Marina N. ;
Razuvaev, Vyacheslav N. ;
Robinson, David A. ;
Romanov, Peter ;
Shindell, Drew ;
Shmakin, Andrey B. ;
Sokratov, Sergey A. ;
Warren, Stephen ;
Yang, Daquing .
AMBIO, 2011, 40 :17-31