Evidence of unfrozen liquids and seismic anisotropy at the base of the polar ice sheets

被引:19
|
作者
Wittlinger, Gerard [1 ]
Farra, Verronique [2 ]
机构
[1] Univ Strasbourg, EOST, UMR CNRS 7516, F-67084 Strasbourg, France
[2] Sorbonne Paris Cite, IPG Paris, UMR CNRS 7154, F-75005 Paris, France
关键词
Polar ice; Seismic anisotropy; Unfrozen liquids; ELASTIC-CONSTANTS; MASS-BALANCE; FLOW; VELOCITIES; BENEATH; WATER; THICKNESS; DYNAMICS; STREAM;
D O I
10.1016/j.polar.2014.07.006
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
We analyze seismic data from broadband stations located on the Antarctic and Greenland ice sheets to determine polar ice seismic velocities. P-to-S converted waves at the ice/rock interface and inside the ice sheets and their multiples (the P-receiver functions) are used to estimate in-situ P-wave velocity (Vp) and P-to-S velocity ratio (Vp/Vs) of polar ice. We find that the polar ice sheets have a two-layer structure; an upper layer of variable thickness (about 2/3 of the total thickness) with seismic velocities close to the standard ice values, and a lower layer of approximately constant thickness with standard Vp but similar to 25% smaller Vs. The lower layer ceiling corresponds approximately to the -30 degrees C isotherm. Synthetic modeling of P-receiver functions shows that strong seismic anisotropy and low vertical S velocity are needed in the lower layer. The seismic anisotropy results from the preferred orientation of ice crystal c-axes toward the vertical. The low vertical S velocity may be due to the presence of unfrozen liquids resulting from premelting at grain joints and/or melting of chemical solutions buried in the ice. The strongly preferred ice crystal orientation fabric and the unfrozen fluids may facilitate polar ice sheet basal flow. (C) 2014 Elsevier B.V. and NIPR. All rights reserved.
引用
收藏
页码:66 / 79
页数:14
相关论文
共 50 条
  • [41] ATMOSPHERIC TURBIDITY AND SURFACE-TEMPERATURE ON POLAR ICE SHEETS
    HAMILTON, WL
    SELIGA, TA
    NATURE, 1972, 235 (5337) : 320 - &
  • [42] Kinetics of air-hydrate nucleation in polar ice sheets
    Salamatin, AN
    Lipenkov, VY
    Ikeda-Fukazawa, T
    Hondoh, T
    JOURNAL OF CRYSTAL GROWTH, 2001, 223 (1-2) : 285 - 305
  • [43] CONVECTION IN POLAR ICE SHEETS AS A MODEL FOR CONVECTION IN EARTHS MANTLE
    HUGHES, T
    JOURNAL OF GEOPHYSICAL RESEARCH, 1971, 76 (11): : 2628 - &
  • [44] A RADIO ECHO EQUIPMENT FOR DEPTH SOUNDING IN POLAR ICE SHEETS
    EVANS, S
    SMITH, BME
    JOURNAL OF PHYSICS E-SCIENTIFIC INSTRUMENTS, 1969, 2 (02): : 131 - &
  • [45] Collapse of polar ice sheets during the stage 11 interglacial
    Maureen E. Raymo
    Jerry X. Mitrovica
    Nature, 2012, 483 : 453 - 456
  • [46] Monitoring Polar Ice Sheets using TanDEM-X
    Mouginot, Jeremie
    Scheuchl, Bernd
    Rignot, Eric
    Li, Xin
    10TH EUROPEAN CONFERENCE ON SYNTHETIC APERTURE RADAR (EUSAR 2014), 2014,
  • [47] TOTAL GAS CONTENT AND SURFACE ELEVATION OF POLAR ICE SHEETS
    RAYNAUD, D
    LEBEL, B
    NATURE, 1979, 281 (5729) : 289 - 291
  • [48] Numerical modeling of snow cover over polar ice sheets
    Dang, H
    Genthon, C
    Martin, E
    ANNALS OF GLACIOLOGY, VOL 25, 1997: PAPERS FROM THE INTERNATIONAL SYMPOSIUM ON REPRESENTATION OF THE CRYOSPHERE IN CLIMATE AND HYDROLOGICAL MODELS HELD AT VICTORIA, BRITISH COLUMBIA, CANADA, 12-15 AUGUST 1996, 1997, 25 : 170 - 176
  • [49] UAS-Based Radar Sounding of the Polar Ice Sheets
    Leuschen, C.
    Hale, R.
    Keshmiri, S.
    Yan, J. B.
    Rodriguez-Morales, F.
    Mahmood, A.
    Gogineni, S.
    IEEE GEOSCIENCE AND REMOTE SENSING MAGAZINE, 2014, 2 (01) : 8 - 17
  • [50] Contribution of crystal orientation and grain boundary compliance to low shear velocity observed near base of polar ice sheets
    Sayers, Colin M.
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2021, 227 (03) : 1554 - 1566