C-BAND BACKSCATTER MEASUREMENTS OF WINTER SEA-ICE IN THE WEDDELL-SEA, ANTARCTICA

被引:21
作者
DRINKWATER, MR
HOSSEINMOSTAFA, R
GOGINENI, P
机构
[1] UNIV KANSAS,CTR RES INC,RADAR SYST & REMOTE SENSING LAB,LAWRENCE,KS 66045
[2] CALTECH,JET PROP LAB,PASADENA,CA 91109
关键词
D O I
10.1080/01431169508954635
中图分类号
TP7 [遥感技术];
学科分类号
081102 ; 0816 ; 081602 ; 083002 ; 1404 ;
摘要
During the 1992 Winter Weddell Gyre Study, a C-band scatterometer was used from the German ice-breaker R/V Polarstern to obtain detailed shipborne measurement scans of Antarctic sea-ice. The frequency-modulated continuous-wave (FM-CW) radar operated at 4.3 GHz and acquired like- (VV) and cross-polarization (HV) data at a variety of incidence angles (10-75 degrees). Calibrated backscatter data were recorded for several ice types as the icebreaker crossed the Weddell Sea and detailed measurements were made of corresponding snow and sea-ice characteristics at each measurement site, together with meteorological information, radiation budget and oceanographic data. The primary scattering contributions under cold winter conditions arise from the air/snow and snow/ice interfaces. Observations indicate some similarities with Arctic sea-ice scattering signatures, although the main difference is generally lower mean backscattering coefficients in the Weddell Sea. This is due to the younger mean ice age and thickness, and correspondingly higher mean salinities. In particular, smooth white ice found in 1992 in divergent areas within the Weddell Gyre ice pack was generally extremely smooth and undeformed. Comparisons of held scatterometer data with calibrated 20-26 degrees incidence ERS-1 radar image data show close correspondence, and indicate that rough Antarctic first-year and older second-year ice forms do not produce as distinctively different scattering signatures as observed in the Arctic. Thick deformed first-year and second-year ice on the other hand are clearly discriminated from younger undeformed ice, thereby allowing successful separation of thick and thin ice. Time-series data also indicate that C-band is sensitive to changes in snow and ice conditions resulting from atmospheric and oceanographic forcing and the local heat flux environment. Variations of several dB in 45 degrees incidence backscatter occur in response to a combination of thermally-regulated parameters including sea-ice brine volume, snow and ice complex dielectric properties, and snow physical properties.
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页码:3365 / 3389
页数:25
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