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    Título
    Mapping and Interpreting the Uppermost Mantle Reflectivity Beneath Central and South‐West Iberia
    Autor(es)
    Palomeras Torres, InmaculadaAutoridad USAL ORCID
    Ayarza Arribas, María PuyAutoridad USAL ORCID
    Andrés, J
    Álvarez Valero, Antonio MiguelAutoridad USAL ORCID
    Gómez Barreiro, JuanAutoridad USAL ORCID
    Díaz, J.
    Alcalde, J.
    Carbonell, R.
    Palabras clave
    Two uppermost mantle P-wave reflections observed beneath the SW-Iberian Peninsula at 50–75 km (H) and 90–110 km (L) depth
    “H” corresponds to an increase in velocity and is likely the Hales discontinuity. “L” is related to velocity decrease at the LAB
    Full wavefield modeling shows the Hales discontinuity corresponds to a zone of randomly distributed thin bodies with small Vp variations
    Fecha de publicación
    2021
    Editor
    AGU
    Citación
    Palomeras, I., Ayarza, P., Andrés, J., Álvarez-Valero, A. M., Gómez-Barreiro, J., Díaz, J., et al. (2021). Mapping and interpreting the uppermost mantle reflectivity beneath Central and South-West Iberia. Journal of Geophysical Research: Solid Earth, 126, e2020JB019987. https://doi.org/10.1029/2020JB019987
    Resumen
    [EN]At least two sub-Moho reflectors have been identified in different seismic refraction and wide-angle reflection experiments conducted in western Iberia since the early 1990s. The wavelet kinematics and characteristics of the shallowest event are probably produced by an increase in P-wave velocity that forward modeling places at ∼70–75 km depth beneath the Ossa-Morena Zone (OMZ) shallowing up to 50–60 km beneath the Central Iberian Zone (CIZ). Synthetic modeling suggests that the coda and amplitude of this arrival may correspond to a ∼10-km-thick heterogeneous layer. We used a two-dimensional second-order finite-difference acoustic full wavefield modeling scheme with an input model which includes a layer of randomly distributed bodies thinner than one-fourth of the wavelength of the source waves and ΔVp = ±0.1 km/s at the considered depth range. The resulting synthetic data reproduce well the observed amplitudes and codas because of the constructive interferences caused by this heterogeneous zone. The origin of this layer also discussed here in detail, is very likely related to the phase transition from spinel to garnet lherzolite, the so-called Hales discontinuity. A second reflection also observed in some of the experiments suggests the presence of a velocity inversion at greater depths. Forward modeling places this discontinuity at around 90 km depth beneath the OMZ, deepening to 105–110 km depth beneath the southeast CIZ and shallowing up to 80 km depth in the northeast CIZ. The observed characteristics of this event are consistent with those of the lithosphere-asthenosphere boundary.
    URI
    https://hdl.handle.net/10366/166860
    ISSN
    2169-9313
    DOI
    10.1029/2020JB019987
    Versión del editor
    https://doi.org/10.1029/2020JB019987
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    • GIGT. Artículos [46]
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    Palomeras et al_JGR Solid Earth - 2021 - - Mapping and Interpreting the Uppermost Mantle Reflectivity Beneath Central and.pdf
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