Surface impedance tomography for Antarctic sea ice

被引:2
|
作者
Sampson, C. [1 ]
Golden, K. M. [1 ]
Gully, A. [1 ]
Worby, A. P. [2 ,3 ]
机构
[1] Univ Utah, Dept Math, Salt Lake City, UT 84112 USA
[2] Univ Tasmania, Australian Antarctic Div, Hobart, Tas 7001, Australia
[3] Univ Tasmania, ACE CRC, Hobart, Tas 7001, Australia
基金
美国国家科学基金会;
关键词
Sea ice; Electrical conductivity; Wenner array; Surface impedance tomography; THICKNESS MEASUREMENTS; DIELECTRIC-CONSTANT; RESISTIVITY; BOUNDS; PERMITTIVITY; CONDUCTIVITY; SUMMER; WINTER;
D O I
10.1016/j.dsr2.2010.12.003
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
During the 2007 SIPEX expedition in pack ice off the coast of East Antarctica, we measured the electrical conductivity of sea ice via surface impedance tomography. Resistance data from classical four-probe Wenner arrays on the surfaces of ice floes were used to indirectly reconstruct the conductivity profiles with depth, involving both the horizontal and vertical components. A common problem with these reconstructions is the lack of uniqueness of the inversions, which worsens as the number of layers in the model increases. In the past, three layer inversions have been used to help avoid non-uniqueness. However, this approach assumes that the conductivity profile of sea ice does not change very much with depth. In order to investigate the conductivity profiles one needs to use more layers in the reconstruction. A reasonable starting model is a useful tool that can be used to regularize the inverse problem, allowing a reconstruction that not only matches the Wenner impedance data but the actual profile. Using measurements of brine volume fraction for 10 cm sections of ice cores taken at the Wenner array site, and various models relating brine volume fraction to conductivity, we compare the predicted conductivity profiles based on the models to the reconstructions from the tomographic measurements. We note the close agreement with the actual data for some models and the inadequacy of others. Such models could be useful in finding a reasonable starting point for regularizing inversions, and using n-layer models to reconstruct accurate conductivity profiles. Our results help to provide a rigorous basis for electromagnetic methods of obtaining sea ice thickness data, a key gauge of the impact of climate change in the polar regions. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1149 / 1157
页数:9
相关论文
共 50 条
  • [1] Surface flooding of Antarctic summer sea ice
    Ackley, S. F.
    Perovich, D. K.
    Maksym, T.
    Weissling, B.
    Xie, H.
    ANNALS OF GLACIOLOGY, 2020, 61 (82) : 117 - 126
  • [2] Surface albedo of the Antarctic sea ice zone
    Brandt, RE
    Warren, SG
    Worby, AP
    Grenfell, TC
    JOURNAL OF CLIMATE, 2005, 18 (17) : 3606 - 3622
  • [3] MICROBIOLOGY OF ANTARCTIC SEA-ICE - MICROALGAE AND ANTARCTIC SEA-ICE
    BUNT, JS
    WOOD, EJF
    NATURE, 1963, 199 (490) : 1254 - &
  • [4] Cross-borehole resistivity tomography of Arctic and Antarctic sea ice
    Jones, Keleigh
    Ingham, Malcolm
    Pringle, Daniel
    Eicken, Hajo
    ANNALS OF GLACIOLOGY, 2011, 52 (57) : 161 - 168
  • [5] Surface ice and gap layers in Antarctic sea ice: highly productive habitats
    Kattner, G
    Thomas, DN
    Haas, C
    Kennedy, H
    Dieckmann, GS
    MARINE ECOLOGY PROGRESS SERIES, 2004, 277 : 1 - 12
  • [6] Surface impedance of the "thin ice-sea" structure
    Bashkuev, Yuri B.
    Angarkhaeva, Ludmila Kh.
    Dembelov, Mikhail G.
    Buyanova, Darima G.
    Melchinov, Viktor P.
    25TH INTERNATIONAL SYMPOSIUM ON ATMOSPHERIC AND OCEAN OPTICS: ATMOSPHERIC PHYSICS, 2019, 11208
  • [7] Surface properties and processes of perennial Antarctic sea ice in summer
    Haas, C
    Thomas, DN
    Bareiss, J
    JOURNAL OF GLACIOLOGY, 2001, 47 (159) : 613 - 625
  • [8] Simulation of Antarctic sea ice
    Mitra, Amitabh
    Das, I. M. L.
    CURRENT SCIENCE, 2007, 92 (03): : 345 - 350
  • [9] Biogeochemistry of Antarctic sea ice
    Thomas, DN
    Dieckmann, GS
    OCEANOGRAPHY AND MARINE BIOLOGY, VOL 40, 2002, 40 : 143 - 169
  • [10] Growth in Antarctic sea ice
    Davenport, Stephen
    WEATHER, 2009, 64 (06) : 142 - 142