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    Upper mantle hydration indicated by decreased shear velocity near the Southern Mariana Trench from Rayleigh wave tomography

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    Article (2.071Mb)
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    Date
    2021-07-26
    Author
    Zhu, Gaohua  Concept link
    Wiens, Douglas A.  Concept link
    Yang, Hongfeng  Concept link
    Lin, Jian  Concept link
    Xu, Min  Concept link
    You, Qingyu  Concept link
    Metadata
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    Citable URI
    https://hdl.handle.net/1912/27752
    As published
    https://doi.org/10.1029/2021GL093309
    DOI
    10.1029/2021GL093309
    Abstract
    Reduction of seismic velocities has been employed to study the hydration of incoming plates and forearc mantle in recent years. However, few constraints have been obtained in the Southern Mariana Trench. We use an ocean bottom seismograph (OBS) deployment to conduct Rayleigh wave tomographic studies to derive the SV-wave velocity structure near the Southern Mariana Trench. Measured group and phase velocities as a function of period are inverted to determine the SV-wave velocity using a Bayesian Monte Carlo algorithm. The incoming Pacific Plate is characterized by low velocities (3.6–4.1 km/s) within the upper ∼25 km of the mantle near the trench, indicating extensive mantle hydration of the incoming plate in southern Mariana. The velocity reduction in the forearc mantle is not as large as in central Mariana, most likely indicating a lower forearc serpentinization in this region, which is consistent with the absence of serpentinite mud volcanoes.
    Description
    Author Posting. © American Geophysical Union, 2021. This article is posted here by permission of American Geophysical Union for personal use, not for redistribution. The definitive version was published in Geophysical Research Letters 48(15), (2021): e2021GL093309, https://doi.org/10.1029/2021GL093309.
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    • Geology and Geophysics (G&G)
    Suggested Citation
    Zhu, G., Wiens, D. A., Yang, H., Lin, J., Xu, M., & You, Q. (2021). Upper mantle hydration indicated by decreased shear velocity near the Southern Mariana Trench from Rayleigh wave tomography. Geophysical Research Letters, 48(15), e2021GL093309.
     
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