HF/VHF Radar Sounding of Ice from Manned and Unmanned Airborne Platforms

被引:15
作者
Arnold, Emily [1 ,2 ]
Rodriguez-Morales, Fernando [2 ]
Paden, John [2 ]
Leuschen, Carl [2 ,3 ]
Keshmiri, Shawn [1 ,2 ]
Yan, Stephen [4 ]
Ewing, Mark [1 ,2 ]
Hale, Rick [1 ,2 ]
Mahmood, Ali [2 ,3 ]
Blevins, Aaron [1 ,2 ]
Mishra, Akhilesh [2 ,3 ]
Karidi, Teja [2 ,3 ]
Miller, Bailey [1 ,2 ]
Sonntag, John [5 ]
机构
[1] Univ Kansas, Dept Aerosp Engn, Lawrence, KS 66045 USA
[2] Univ Kansas, Ctr Remote Sensing Ice Sheets, Lawrence, KS 66045 USA
[3] Univ Kansas, Elect Engn & Comp Sci Dept, Lawrence, KS 66045 USA
[4] Univ Alabama, Dept Elect & Comp Engn, Tuscaloosa, AL 35487 USA
[5] AECOM Corp, Greenbelt, MD 20782 USA
基金
美国国家科学基金会;
关键词
remote sensing; ice sheets; glaciers; radar; unmanned aircraft system (UAS); synthetic aperture radar (SAR);
D O I
10.3390/geosciences8050182
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Ice thickness and bed topography of fast-flowing outlet glaciers are large sources of uncertainty for the current ice sheet models used to predict future contributions to sea-level rise. Due to a lack of coverage and difficulty in sounding and imaging with ice-penetrating radars, these regions remain poorly constrained in models. Increases in off-nadir scattering due to the highly crevassed surfaces, volumetric scattering (due to debris and/or pockets of liquid water), and signal attenuation (due to warmer ice near the bottom) are all impediments in detecting bed-echoes. A set of high-frequency (HF)/very high-frequency (VHF) radars operating at 14 MHz and 30-35 MHz were developed at the University of Kansas to sound temperate ice and outlet glaciers. We have deployed these radars on a small unmanned aircraft system (UAS) and a DHC-6 Twin Otter. For both installations, the system utilized a dipole antenna oriented in the cross-track direction, providing some performance advantages over other temperate ice sounders operating at lower frequencies. In this paper, we describe the platform-sensor systems, field operations, data-processing techniques, and preliminary results. We also compare our results with data from other ice-sounding radars that operate at frequencies both above (Center for Remote Sensing of Ice Sheets (CReSIS) Multichannel Coherent Depth Sounder (MCoRDS)) and below (Jet Propulsion Laboratory (JPL) Warm Ice Sounding Explorer (WISE)) our HF/VHF system. During field campaigns, both unmanned and manned platforms flew closely spaced parallel and repeat flight lines. We examine these data sets to determine image coherency between flight lines and discuss the feasibility of forming 2D synthetic apertures by using such a mission approach.
引用
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页数:22
相关论文
共 68 条
[1]   Suppressing coherent noise in radar applications with long dwell times [J].
Allen, CT ;
Mozaffar, SN ;
Akins, TL .
IEEE GEOSCIENCE AND REMOTE SENSING LETTERS, 2005, 2 (03) :284-286
[2]  
[Anonymous], 1979, J GLACIOL, DOI DOI 10.3189/S0022143000014726
[3]  
Anthoff D., 2006, 96 TYND CTR CLIM CHA, P31
[4]  
Arcone S., 2000, P SPIE, VVolume 4084
[5]   A new bed elevation dataset for Greenland [J].
Bamber, J. L. ;
Griggs, J. A. ;
Hurkmans, R. T. W. L. ;
Dowdeswell, J. A. ;
Gogineni, S. P. ;
Howat, I. ;
Mouginot, J. ;
Paden, J. ;
Palmer, S. ;
Rignot, E. ;
Steinhage, D. .
CRYOSPHERE, 2013, 7 (02) :499-510
[6]   A new 1 km digital elevation model of the Antarctic derived from combined satellite radar and laser data - Part 1: Data and methods [J].
Bamber, J. L. ;
Gomez-Dans, J. L. ;
Griggs, J. A. .
CRYOSPHERE, 2009, 3 (01) :101-111
[7]  
Blindow N., 2012, 2012 14th International Conference on Ground Penetrating Radar (GPR), P664, DOI 10.1109/ICGPR.2012.6254945
[8]  
Brown C.S., 1986, US GEOLOGICAL SURVEY, P1258
[9]   A low-frequency ice-penetrating radar system adapted for use from an airplane: test results from Bering and Malaspina Glaciers, Alaska, USA [J].
Conway, Howard ;
Smith, Ben ;
Vaswani, Pavan ;
Matsuoka, Kenichi ;
Rignot, Eric ;
Claus, Paul .
ANNALS OF GLACIOLOGY, 2009, 50 (51) :93-97
[10]  
Corr H.F.J., 2007, TERRA ANT REP, V13, P55