The Pacific lithosphere-asthenosphere boundary: Seismic imaging and anisotropic constraints from SS waveforms

被引:34
|
作者
Rychert, Catherine A. [1 ]
Schmerr, Nicholas [2 ]
Harmon, Nicholas [1 ]
机构
[1] Univ Southampton, Natl Oceanog Ctr Southampton, Southampton SO14 3ZH, Hants, England
[2] NASA, Goddard Space Flight Ctr, Planetary Geodynam Lab, Greenbelt, MD 20771 USA
基金
英国自然环境研究理事会;
关键词
Pacific; anisotropy; body waves; lithosphere-asthenosphere; oceanic lithosphere; seismic; UPPER-MANTLE STRUCTURE; OCEANIC UPPER-MANTLE; STRUCTURE BENEATH; PLUME CONDUIT; LOW-VELOCITY; HEAT-FLOW; MELT; ZONE; ORIGIN; TOMOGRAPHY;
D O I
10.1029/2012GC004194
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 lithosphere-asthenosphere boundary (LAB) separating the rigid lid from the underlying weaker, convecting asthenosphere is a fundamental interface in mantle dynamics and plate tectonics. However, the exact depth and defining mechanism of the LAB interface remain poorly understood. The ocean plates are ideal for testing hypotheses regarding the nature of a plate since they make up 70% of Earth's surface area and have a relatively simple geological history. Seismically imaging the oceanic LAB at high resolution has proved challenging. Yet, several studies have recently increased resolution with provocative results. We summarize recent imaging of discontinuity structure beneath much of the Pacific using receiver functions from ocean floor borehole seismometers and land stations located at ocean-continent margins, SS precursors, and waveform modeling of multiple phases including multiple bounce S waves, ScS reverberations, and surface waves. Overall, there is much agreement among these different approaches about the reported depth of a negative discontinuity that occurs near the expected depth of the LAB. Some of the apparent discrepancies in depth are explained by the variation in sensitivity of seismic waves that sample structure at different wavelengths. Yet, when the results are considered together, no single age-depth relationship is illuminated. There are also puzzling discrepancies in where the discontinuity is detected, which again suggests greater complexity. Here we test the possibility that discrepant detection of a strong sharp discontinuity is caused by anisotropic structure. We stack SS waveforms with bounce points in the central Pacific into azimuthal bins. We use two methods, one that inverts for discontinuity structure based on subtle variations in the character of the SS waveform, and another that considers SS at higher frequency. We find azimuthal variation in the amplitude of the waveform, including a polarity reversal. We suggest that anisotropy is an important factor in imaging and constraining discontinuity structure of the oceanic plate, and must be carefully considered to constrain the age-depth dependence and defining mechanism of the oceanic lithosphere.
引用
收藏
页数:18
相关论文
共 50 条
  • [41] Integrated geophysical-petrological modeling of lithosphere-asthenosphere boundary in central Tibet using electromagnetic and seismic data
    Vozar, Jan
    Jones, Alan G.
    Fullea, Javier
    Agius, Matthew R.
    Lebedev, Sergei
    Le Pape, Florian
    Wei, Wenbo
    GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2014, 15 (10): : 3965 - 3988
  • [42] Imaging a relic of complex tectonics: the lithosphere-asthenosphere structure in the Eastern Mediterranean
    ElGabry, Mohamed N.
    Panza, Giuliano Francesco
    Badawy, Ahmed A.
    Korrat, Ibrahim M.
    TERRA NOVA, 2013, 25 (02) : 102 - 109
  • [43] Seismic evidence for a plume-modified oceanic lithosphere-asthenosphere system beneath Cape Verde
    Liu, Xin
    Zhao, Dapeng
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2021, 225 (02) : 872 - 886
  • [44] Hygrometric Control on the Lithosphere-Asthenosphere Boundary: A 28 Million Year Record From the Canadian Cordillera
    Canil, Dante
    Hyndman, Roy D.
    Fode, Dominic
    GEOPHYSICAL RESEARCH LETTERS, 2021, 48 (09)
  • [45] Conductive Channels in the Deep Oceanic Lithosphere Could Consist of Garnet Pyroxenites at the Fossilized Lithosphere-Asthenosphere Boundary
    Ferrand, Thomas P.
    MINERALS, 2020, 10 (12) : 1 - 28
  • [46] A sharp cratonic lithosphere-asthenosphere boundary beneath the American Midwest and its relation to mantle flow
    Foster, K.
    Dueker, K.
    Schmandt, B.
    Yuan, H.
    EARTH AND PLANETARY SCIENCE LETTERS, 2014, 402 : 82 - 89
  • [47] A New View of Shear Wavespeed and the Lithosphere-Asthenosphere Boundary in the Southwestern United States
    Golos, E. M.
    Brunsvik, B.
    Eilon, Z.
    Fischer, K. M.
    Byrnes, J.
    Gaherty, J.
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2024, 129 (08)
  • [48] Melt-rich lithosphere-asthenosphere boundary inferred from petit-spot volcanoes
    Yamamoto, Junji
    Korenaga, Jun
    Hirano, Naoto
    Kagi, Hiroyuki
    GEOLOGY, 2014, 42 (11) : 967 - 970
  • [49] Nature of the lithosphere-asthenosphere boundary beneath the Eastern Dharwar Craton of the Indian Shield
    Mukherjee, Sambuddha
    Ray, Labani
    Maurya, Satish
    Shalivahan
    Kumar, Prakash
    JOURNAL OF ASIAN EARTH SCIENCES, 2022, 227
  • [50] The lithosphere-asthenosphere boundary revealed by S-receiver functions from the Hi-CLIMB experiment
    Xu, Qiang
    Zhao, Junmeng
    Pei, Shunping
    Liu, Hongbing
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2011, 187 (01) : 414 - 420