Thermal properties of the crust and the lithosphere–asthenosphere boundary in the area of Poland from the heat flow variability and seismic data

被引:0
|
作者
Jacek Majorowicz
Marcin Polkowski
Marek Grad
机构
[1] University of Alberta,Faculty of Physics, Institute of Geophysics
[2] Northern Geothermal Consult,undefined
[3] University of Warsaw,undefined
来源
关键词
3D seismic model of the crust; Heat flow; Geotherms; Magnetic crust; LAB; Central Europe tectonic units;
D O I
暂无
中图分类号
学科分类号
摘要
High-resolution 3D seismic P-wave velocity model of Poland (Grad et al., Tectonophysics 666:188–210, 2016) and corrected for paleoclimate heat flow map (Majorowicz and Wybraniec, Int J Earth Sci 100(4):881–887, 2011) gridded to a common mesh are used together with four independent thermal models of the crust and upper mantle to calculate heat flow variation with depth and geotherms. Heat flow at Moho depth are calculated and mapped and both confirm large variability with an elevated mantle heat flow (circa 30–40 mW/m2) in the Paleozoic Platform which is some 10–20 mW/m2 higher than Moho heat flow in the north-eastern and south-eastern Poland which belong to a variety of tectonic terranes (the oldest Precambrian Craton, younger Cadomian, Trans-European Suture Zone, Carpathians). Temperatures calculated for the crust show consistent pattern: higher temperatures beneath the Paleozoic Platform and lower temperatures beneath the Precambrian and Cadomian units. At 10 km depth this difference is about 150 °C, about 300 °C at 20 km depth, and about 400 °C at 50–60 km. Assuming the calculated isotherm 580 °C as Curie temperature the magnetic crust thickness was determined as 5–10 km only beneath the Polish Basin, circa 20 km in Carpathians, circa 30 km in Sudetes, and 35–40 km beneath the Precambrian and Cadomian units. Such a thick magnetic crust results from a great depth of Curie temperature, thick crystalline crust, and thin sediments. Mantle heat flow variability is mainly correlating with measured surface heat flow and influences geotherms. Calculated thermal LAB depth follows patterns of heat flow and Moho heat flow variability through Poland with thinnest lithosphere in the high surface heat flow and high mantle heat flow areas. Comparison of this thermal LAB depth estimates with seismic data based LAB depth shows general coincidences when Precambrian Craton vs Paleozoic Platform are considered along the P4 seismic experiment data model (circa 190 km depth vs some 90 km depth, respectively). However, significant differences exist in many areas and especially for the SE Poland when compared with map for the whole of Poland compiled from other seismic reported data.
引用
收藏
页码:649 / 672
页数:23
相关论文
共 50 条
  • [1] Thermal properties of the crust and the lithosphere-asthenosphere boundary in the area of Poland from the heat flow variability and seismic data
    Majorowicz, Jacek
    Polkowski, Marcin
    Grad, Marek
    INTERNATIONAL JOURNAL OF EARTH SCIENCES, 2019, 108 (02) : 649 - 672
  • [2] Seismic evidence of the lithosphere-asthenosphere boundary beneath the Tonga area, southwestern Pacific
    Cui, Huihui
    Zhou, Yuanze
    Chen, Youlin
    JOURNAL OF ASIAN EARTH SCIENCES, 2017, 138 : 129 - 135
  • [3] Seismic evidence of the lithosphere-asthenosphere boundary beneath Izu-Bonin area
    Cui H.
    Gao Y.
    Zhou Y.
    Zhou, Yuanze (yzzhou@ucas.ac.cn), 1600, Chinese Academy of Sciences (62): : 711 - 720
  • [4] Temperature, lithosphere-asthenosphere boundary, and heat flux beneath the Antarctic Plate inferred from seismic velocities
    An, Meijian
    Wiens, Douglas A.
    Zhao, Yue
    Feng, Mei
    Nyblade, Andrew
    Kanao, Masaki
    Li, Yuansheng
    Maggi, Alessia
    Leveque, Jean-Jacques
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2015, 120 (12) : 8720 - 8742
  • [5] Seismic Anisotropy Beneath the Pamir and the Hindu Kush: Evidence for Contributions From Crust, Mantle Lithosphere, and Asthenosphere
    Kufner, Sofia-Katerina
    Eken, Tuna
    Tilmann, Frederik
    Schurr, Bernd
    Yuan, Xiaohui
    Mechie, James
    Sippl, Christian
    Schneider, Felix
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2018, 123 (12) : 10727 - 10748
  • [6] Oceanic lithosphere-asthenosphere boundary from surface wave dispersion data
    Burgos, G.
    Montagner, J. -P.
    Beucler, E.
    Capdeville, Y.
    Mocquet, A.
    Drilleau, M.
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2014, 119 (02) : 1079 - 1093
  • [7] Seismic Constraints on the Lithosphere–Asthenosphere Boundary Beneath the Izu-Bonin Area: Implications for the Oceanic Lithospheric Thinning
    Qinghui Cui
    Rongqiang Wei
    Yuanze Zhou
    Yajian Gao
    Wenlan Li
    Pure and Applied Geophysics, 2018, 175 : 1983 - 1995
  • [8] Lithosphere Thickness from New Heat-Flow Data of the Odra Variscan Area, S-W Poland
    Jacek Majorowicz
    Jan Šafanda
    Pure and Applied Geophysics, 2018, 175 : 4343 - 4354
  • [9] The Pacific lithosphere-asthenosphere boundary: Seismic imaging and anisotropic constraints from SS waveforms
    Rychert, Catherine A.
    Schmerr, Nicholas
    Harmon, Nicholas
    GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2012, 13
  • [10] Lithosphere Thickness from New Heat-Flow Data of the Odra Variscan Area, S-W Poland
    Majorowicz, Jacek
    Safanda, Jan
    PURE AND APPLIED GEOPHYSICS, 2018, 175 (12) : 4343 - 4354