Temporal and spatial variability in surface roughness and accumulation rate around 88° S from repeat airborne geophysical surveys
-
Published:2020-10-02
Issue:10
Volume:14
Page:3287-3308
-
ISSN:1994-0424
-
Container-title:The Cryosphere
-
language:en
-
Short-container-title:The Cryosphere
Author:
Studinger MichaelORCID, Medley Brooke C.ORCID, Brunt Kelly M., Casey Kimberly A.ORCID, Kurtz Nathan T., Manizade Serdar S., Neumann Thomas A.ORCID, Overly Thomas B.
Abstract
Abstract. We use repeat high-resolution airborne geophysical data
consisting of laser altimetry, snow, and Ku-band radar and optical imagery
acquired in 2014, 2016, and 2017 to analyze the spatial and temporal
variability in surface roughness, slope, wind deposition, and snow
accumulation at 88∘ S, an elevation bias validation site for
ICESat-2 and potential validation site for CryoSat-2. We find significant
small-scale variability (<10 km) in snow accumulation based on the
snow radar subsurface stratigraphy, indicating areas of strong wind
redistribution are prevalent at 88∘ S. In general, highs in snow
accumulation rate correspond with topographic lows, resulting in a negative
correlation coefficient of r2=-0.32 between accumulation rate and
MSWD (mean slope in the mean wind direction). This relationship is strongest
in areas where the dominant wind direction is parallel to the survey
profile, which is expected as the geophysical surveys only capture a
two-dimensional cross section of snow redistribution. Variability in snow
accumulation appears to correlate with variability in MSWD. The correlation
coefficient between the standard deviations of accumulation rate and MSWD is
r2=0.48, indicating a stronger link between the standard deviations
than the actual parameters. Our analysis shows that there is no simple
relationship between surface slope, wind direction, and snow accumulation
rates for the overall survey area. We find high variability in surface
roughness derived from laser altimetry measurements on length scales
smaller than 10 km, sometimes with very distinct and sharp transitions. Some
areas also show significant temporal variability over the course of the 3
survey years. Ultimately, there is no statistically significant
slope-independent relationship between surface roughness and accumulation
rates within our survey area. The observed correspondence between the
small-scale temporal and spatial variability in surface roughness and
backscatter, as evidenced by Ku-band radar signal strength retrievals, will
make it difficult to develop elevation bias corrections for radar altimeter
retrieval algorithms.
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Water Science and Technology
Reference87 articles.
1. Abdalati, W., Zwally, H. J., Bindschadler, R., Csatho, B., Farrell, S. L.,
Fricker, H. A., Harding, D., Kwok, R., Lefsky, M., Markus, T., Marshak, A.,
Neumann, T., Palm, S., Schutz, B., Smith, B., Spinhirne, J., and Webb, C.:
The ICESat-2 Laser Altimetry Mission, Proc. IEEE, 98, 735–751,
https://doi.org/10.1109/jproc.2009.2034765, 2010. 2. Arcone, S. A., Jacobel, R., and Hamilton, G.: Unconformable stratigraphy in
East Antarctica: Part I. Large firn cosets, recrystallized growth, and model
evidence for intensified accumulation, J. Glaciol., 58, 240–252,
https://doi.org/10.3189/2012JoJ11J044, 2012. 3. Armitage, T. W. K., Wingham, D. J., and Ridout, A. L.: Meteorological Origin
of the Static Crossover Pattern Present in Low-Resolution-Mode CryoSat-2
Data Over Central Antarctica, Geosci. Remote Sens. Lett., IEEE,
11, 1295–1299, https://doi.org/10.1109/LGRS.2013.2292821, 2014. 4. Arthern, R. J., Wingham, D. J., and Ridout, A. L.: Controls on ERS altimeter
measurements over ice sheets: Footprint-scale topography, backscatter
fluctuations, and the dependence of microwave penetration depth on satellite
orientation, J. Geophys. Res.-Atmos., 106, 33471–33484,
https://doi.org/10.1029/2001jd000498, 2001. 5. Arthern, R. J., Winebrenner, D. P., and Vaughan, D. G.: Antarctic snow
accumulation mapped using polarization of 4.3-cm wavelength microwave
emission, J. Geophys. Res.-Atmos., 111, D06107,
https://doi.org/10.1029/2004jd005667, 2006.
Cited by
8 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|