A comparison of shipborne and airborne electromagnetic methods for Antarctic sea ice thickness measurements

被引:6
作者
Reid, James E. [1 ]
Vrbancich, Julian [2 ]
Worby, Anthony P. [3 ,4 ]
机构
[1] Univ Tasmania, Sch Earth Sci, Hobart, Tas 7001, Australia
[2] Def Sci & Technol Org, Maritime Operat Div, Pyrmont, NSW 2009, Australia
[3] Antarctic Cooperat Res Ctr, Hobart, Tas 7001, Australia
[4] Australian Antarctic Div, Hobart, Tas 7001, Australia
关键词
Antarctic sea ice thickness; airborne electromagnetics; three-dimensional modelling; one-dimensional inversion;
D O I
10.1071/EG03046
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The three-dimensional modelling program MARCO_AIR has been used to calculate the response of idealized sea-ice pressure ridge models to practical airborne and shipborne electromagnetic systems. The model results clearly show the superior lateral resolution of the horizontal coplanar shipborne system compared to higher-altitude airborne measurements. However, sea-ice keel thicknesses estimated via one-dimensional inversion of shipborne single-frequency electromagnetic data are strongly dependent on relatively small variations in survey altitude. One-dimensional inversion of synthetic helicopter electromagnetic data over three-dimensional pressure ridge models shows that the maximum ice keel thickness is consistently underestimated, although airborne EM methods yield reliable thickness estimates over level ice. The vertical-coaxial coil survey geometry offers excellent lateral resolution of multiple targets, but the anomalies of typical Antarctic sea-ice pressure ridges would be too small to be reliably detected in practical surveys using an HEM system with a transmitter-receiver separation of 2-3 m. For an HEM system with a coil separation of 8 m, the vertical coaxial responses are larger, and lateral resolution of the vertical coaxial measurements at a flight height of 20 m is superior to a close-coupled horizontal coplanar system flown at an altitude of 10 m.
引用
收藏
页码:46 / 50
页数:5
相关论文
共 19 条
[1]  
[Anonymous], 1998, ANTAR RES S
[2]   Airborne EM footprints [J].
Beamish, D .
GEOPHYSICAL PROSPECTING, 2003, 51 (01) :49-60
[3]   Comparison of sea-ice thickness measurements under summer and winter conditions in the Arctic using a small electromagnetic induction device [J].
Haas, C ;
Gerland, S ;
Eicken, H ;
Miller, H .
GEOPHYSICS, 1997, 62 (03) :749-757
[4]   Evaluation of ship-based electromagnetic-inductive thickness measurements of summer sea-ice in the Bellingshausen and Amundsen Seas, Antarctica [J].
Haas, C .
COLD REGIONS SCIENCE AND TECHNOLOGY, 1998, 27 (01) :1-16
[5]   Modeling of the EM inductive-limit surface currents [J].
King, A ;
MacNae, JC .
GEOPHYSICS, 2001, 66 (02) :476-481
[6]   AIRBORNE ELECTROMAGNETIC SOUNDING OF SEA ICE THICKNESS AND SUB-ICE BATHYMETRY [J].
KOVACS, A ;
VALLEAU, NC ;
HOLLADAY, JS .
COLD REGIONS SCIENCE AND TECHNOLOGY, 1987, 14 (03) :289-311
[7]   THE FOOTPRINT ALTITUDE RATIO FOR HELICOPTER ELECTROMAGNETIC SOUNDING OF SEA-ICE THICKNESS - COMPARISON OF THEORETICAL AND FIELD ESTIMATES [J].
KOVACS, A ;
HOLLADAY, JS ;
BERGERON, CJ .
GEOPHYSICS, 1995, 60 (02) :374-380
[8]   SEA-ICE THICKNESS MEASUREMENT USING A SMALL AIRBORNE ELECTROMAGNETIC SOUNDING SYSTEM [J].
KOVACS, A ;
HOLLADAY, JS .
GEOPHYSICS, 1990, 55 (10) :1327-1337
[9]   INVERSION OF AIRBORNE ELECTROMAGNETIC SURVEY DATA FOR SEA-ICE KEEL SHAPE [J].
LIU, GM ;
KOVACS, A ;
BECKER, A .
GEOPHYSICS, 1991, 56 (12) :1986-1991
[10]   2-DIMENSIONAL MAPPING OF SEA-ICE KEELS WITH AIRBORNE ELECTROMAGNETICS [J].
LIU, GM ;
BECKER, A .
GEOPHYSICS, 1990, 55 (02) :239-248