Remote Sensing of Surface Melt on Antarctica: Opportunities and Challenges

被引:13
作者
Husman, Sophie de Roda [1 ]
Hu, Zhongyang [2 ]
Wouters, Bert [1 ,2 ]
Munneke, Peter Kuipers [2 ]
Veldhuijsen, Sanne [2 ]
Lhermitte, Stef [1 ]
机构
[1] Delft Univ Technol, Dept Geosci & Remote Sensing, NL-2628 CD Delft, Netherlands
[2] Univ Utrecht, Inst Marine & Atmospher Res Utrecht, NL-3584 CS Utrecht, Netherlands
关键词
Sensors; Sea surface; Surface topography; Ocean temperature; Land surface; Antarctica; Surface treatment; Antarctic Ice Sheet; Earth observation; ice shelves; melt detection; multisource remote sensing; polar regions; satellite observations; GREENLAND ICE-SHEET; MASS-BALANCE; SUPRAGLACIAL LAKES; SNOW PARAMETERS; DRY-SNOW; SHELF; MELTWATER; TEMPERATURE; MODEL; REFLECTANCE;
D O I
10.1109/JSTARS.2022.3216953
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Surface melt is an important driver of ice shelf disintegration and its consequent mass loss over the Antarctic Ice Sheet. Monitoring surface melt using satellite remote sensing can enhance our understanding of ice shelf stability. However, the sensors do not measure the actual physical process of surface melt, but rather observe the presence of liquid water. Moreover, the sensor observations are influenced by the sensor characteristics and surface properties. Therefore, large inconsistencies can exist in the derived melt estimates from different sensors. In this study, we apply state-of-the-art melt detection algorithms to four frequently used remote sensing sensors, i.e., two active microwave sensors, which are Advanced Scatterometer (ASCAT) and Sentinel-1, a passive microwave sensor, i.e., Special Sensor Microwave Imager/Sounder (SSMIS), and an optical sensor, i.e., Moderate Resolution Imaging Spectroradiometer (MODIS). We intercompare the melt detection results over the entire Antarctic Ice Sheet and four selected study regions for the melt seasons 2015-2020. Our results show large spatiotemporal differences in detected melt between the sensors, with particular disagreement in blue ice areas, in aquifer regions, and during wintertime surface melt. We discuss that discrepancies between sensors are mainly due to cloud obstruction and polar darkness, frequency-dependent penetration of satellite signals, temporal resolution, and spatial resolution, as well as the applied melt detection methods. Nevertheless, we argue that different sensors can complement each other, enabling improved detection of surface melt over the Antarctic Ice Sheet.
引用
收藏
页码:2462 / 2480
页数:19
相关论文
共 122 条
[1]   PASSIVE MICROWAVE-DERIVED SNOW MELT REGIONS ON THE GREENLAND ICE-SHEET [J].
ABDALATI, W ;
STEFFEN, K .
GEOPHYSICAL RESEARCH LETTERS, 1995, 22 (07) :787-790
[2]   Estimation of the Antarctic surface mass balance using the regional climate model MAR (1979-2015) and identification of dominant processes [J].
Agosta, Cecile ;
Amory, Charles ;
Kittel, Christoph ;
Orsi, Anais ;
Favier, Vincent ;
Gallee, Hubert ;
van den Broeke, Michiel R. ;
Lenaerts, Jan T. M. ;
van Wessem, Jan Melchior ;
van de Berg, Willem Jan ;
Fettweis, Xavier .
CRYOSPHERE, 2019, 13 (01) :281-296
[3]   Spatial and temporal changes in dry-snow line altitude on the Antarctic Peninsula [J].
Arigony-Neto, Jorge ;
Saurer, Helmut ;
Simoes, Jefferson C. ;
Rau, Frank ;
Jana, Ricardo ;
Vogt, Steffen ;
Gossmann, Hermann .
CLIMATIC CHANGE, 2009, 94 (1-2) :19-33
[4]   Large interannual variability in supraglacial lakes around East Antarctica [J].
Arthur, Jennifer F. ;
Stokes, Chris R. ;
Jamieson, Stewart S. R. ;
Carr, J. Rachel ;
Leeson, Amber A. ;
Verjans, Vincent .
NATURE COMMUNICATIONS, 2022, 13 (01)
[5]   Distribution and seasonal evolution of supraglacial lakes on Shackleton Ice Shelf, East Antarctica [J].
Arthur, Jennifer F. ;
Stokes, Chris R. ;
Jamieson, Stewart S. R. ;
Carr, J. Rachel ;
Leeson, Amber A. .
CRYOSPHERE, 2020, 14 (11) :4103-4120
[6]   Comparison of methods for melt detection over Greenland using active and passive microwave measurements [J].
Ashcraft, Ivan S. ;
Long, David G. .
INTERNATIONAL JOURNAL OF REMOTE SENSING, 2006, 27 (12) :2469-2488
[7]   Sea-level projections representing the deeply uncertain contribution of the West Antarctic ice sheet [J].
Bakker, Alexander M. R. ;
Wong, Tony E. ;
Ruckert, Kelsey L. ;
Keller, Klaus .
SCIENTIFIC REPORTS, 2017, 7
[8]   The 32-year record-high surface melt in 2019/2020 on the northern George VI Ice Shelf, Antarctic Peninsula [J].
Banwell, Alison F. ;
Datta, Rajashree Tri ;
Dell, Rebecca L. ;
Moussavi, Mahsa ;
Brucker, Ludovic ;
Picard, Ghislain ;
Shuman, Christopher A. ;
Stevens, Laura A. .
CRYOSPHERE, 2021, 15 (02) :909-925
[9]   Direct measurements of ice-shelf flexure caused by surface meltwater ponding and drainage [J].
Banwell, Alison F. ;
Willis, Ian C. ;
Macdonald, Grant J. ;
Goodsell, Becky ;
MacAyeal, Douglas R. .
NATURE COMMUNICATIONS, 2019, 10 (1)
[10]   Antarctic surface hydrology and impacts on ice-sheet mass balance [J].
Bell, Robin E. ;
Banwell, Alison F. ;
Trusel, Luke D. ;
Kingslake, Jonathan .
NATURE CLIMATE CHANGE, 2018, 8 (12) :1044-1052