Crustal analysis of maud rise from combined satellite and near-surface magnetic survey data

被引:0
|
作者
Hyung Rae Kim
Ralph R. B. von Frese
Alexander V. Golynsky
Patrick T. Taylor
Jeong Woo Kim
机构
[1] NASA/GSFC,Goddard Earth Science and Technology, University of Maryland, Baltimore County at Planetary Geodynamics Lab
[2] The Ohio State University,Department of Geological Sciences
[3] VNII Okeangeologia,Planetary Geodynamics Lab
[4] NASA/GSFC,Department of Geoinformatic Engineering
[5] Sejong University,undefined
来源
Earth, Planets and Space | 2005年 / 57卷
关键词
Maud Rise; Magnetic anomaly; Antarctic geology; Aeromagnetic data; Orsted; tectonic reconstructions;
D O I
暂无
中图分类号
学科分类号
摘要
We produced a crustal magnetization model for the Maud Rise in the southwest Indian Ocean off the coast of East Antarctica using magnetic observations from the Ørsted satellite and near-surface surveys complied by the Antarctic Digital Magnetic Anomaly Project (ADMAP). Joint inversion of the two anomaly fields suggests that the magnetic effects due to crustal thickness variations and remanence involving the normal polarity Cretaceous Quiet Zone (KQZ) dominate at satellite altitude (~700 km). The crustal thickness effects were modeled in the Ørsted data using crustal thickness variations derived from satellite altitude gravity data. Modeling of the residual Ørsted and near-surface magnetic anomalies supports extending the KQZ eastwards to the Astrid Ridge. The remaining near-surface anomalies involve crustal features with relatively high frequency effects that are strongly attenuated at satellite altitudes. The crustal modeling can be extended by the satellite magnetic anomalies across the Indian Ocean Ridge for insight on the crustal properties of the conjugate Agulhas Plateau. The modeling supports the Jurassic reconstruction of Gondwana when the African Limpopo-Zambezi and East Antarctic Princess Astrid coasts were connected as part of a relatively demagnetized crustal block.
引用
收藏
页码:717 / 726
页数:9
相关论文
共 50 条
  • [21] Near-surface thermal structure and surface diurnal warming in the Adriatic Sea using satellite and drifter data
    Notarstefano, G
    Mauri, E
    Poulain, PM
    REMOTE SENSING OF ENVIRONMENT, 2006, 101 (02) : 194 - 211
  • [22] Estimating advective near-surface currents from ocean color satellite images
    Yang, Haoping
    Arnone, Robert
    Jolliff, Jason
    REMOTE SENSING OF ENVIRONMENT, 2015, 158 : 1 - 14
  • [23] Comparison of Land Surface Temperatures from Near-surface Measurement and Satellite-based Product
    Ryu, Jae-Hyun
    Jeong, Hoejeong
    Choi, Seonwoong
    Lee, Yang-Won
    Cho, Jaeil
    KOREAN JOURNAL OF REMOTE SENSING, 2019, 35 (04) : 609 - 616
  • [24] Automatic Detection of Near-Surface Targets for Unmanned Aerial Vehicle (UAV) Magnetic Survey
    Mu, Yaxin
    Zhang, Xiaojuan
    Xie, Wupeng
    Zheng, Yaoxin
    REMOTE SENSING, 2020, 12 (03)
  • [25] Utility of Slepian basis functions for modeling near-surface and satellite magnetic anomalies of the Australian lithosphere
    Hyung Rae Kim
    Ralph R. B. von Frese
    Earth, Planets and Space, 69
  • [26] Utility of Slepian basis functions for modeling near-surface and satellite magnetic anomalies of the Australian lithosphere
    Kim, Hyung Rae
    von Frese, Ralph R. B.
    EARTH PLANETS AND SPACE, 2017, 69
  • [27] SURFACE AND NEAR-SURFACE STRUCTURE OF GAAS(110) FROM LEED ANALYSIS
    MARK, P
    KAHN, A
    SO, E
    DUKE, CB
    MEYER, RJ
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1978, 23 (03): : 400 - 400
  • [28] An analysis of the characteristics of crustal magnetic anomaly in China based on CHAMP satellite data
    Zhang, Jianguo
    Yang, Xiaodong
    Yan, Jungang
    Wu, Xiaoping
    GEODESY AND GEODYNAMICS, 2018, 9 (04) : 328 - 333
  • [29] An analysis of the characteristics of crustal magnetic anomaly in China based on CHAMP satellite data
    Jianguo Zhang
    Xiaodong Yang
    Jungang Yan
    Xiaoping Wu
    GeodesyandGeodynamics, 2018, 9 (04) : 328 - 333
  • [30] Retrieving near-surface soil moisture from Radarsat SAR data
    Water Resour Res, 5 (1569-1579):