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Attenuation in the upper mantle beneath Southern California: Physical state of the lithosphere and asthenosphere

机译:南加州下地幔的衰减:岩石圈和软流圈的物理状态

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We invert phase and amplitude data of Rayleigh waves for attenuation (Q ?1) and shear wave velocities beneath southern California using teleseismic sources recorded by the TriNet/USArray network. Fundamental mode surface wave studies from 25 to 143 s period allow us to constrain the vertical variation of shear quality factor Q μ in the upper mantle. We use 2-D sensitivity kernels for surface waves based on single-scattering (Born) approximation to account for the effects of scattering on amplitude. A one-dimensional shear velocity model reveals a pronounced low velocity zone (LVZ) from ~80 km to ~200 km underlying a high velocity lid. Q μ shows a similar pattern; large Q μ at depths shallower than 80 km and much smaller Q μ at depths greater than 100 km. Models that attribute the variations of attenuation and shear velocities with depth solely to temperature and pressure effects predict too low Q μ values if they match the shear velocities. Alternative models considering the presence of partial melt can explain the observed very low Vs velocities in the asthenosphere. Partial melt in the asthenosphere could be generated due to decompression and the reduced solidus for damp mantle when the asthenosphere rose to fill the space left by the subducted Farallon plate.
机译:我们使用TriNet / USArray网络记录的远震震源对瑞利波的相位和振幅数据进行了反演,以求衰减(Q?1)和南加州南部的剪切波速度。从25到143 s周期的基本模式表面波研究使我们能够限制上地幔的剪切质量因子Qμ的垂直变化。我们使用基于单散射(Born)近似的表面波二维敏感度内核,以解决散射对振幅的影响。一维剪切速度模型揭示了在高速盖下从〜80 km到〜200 km的明显的低速带(LVZ)。 Qμ显示相似的模式;在小于80 km的深度处具有较大的Qμ,而在大于100 km的深度处具有较小的Qμ。仅将衰减和剪切速度随深度的变化归因于温度和压力影响的模型,如果它们与剪切速度匹配,则预测Qμ值太低。考虑部分熔融的替代模型可以解释在软流圈中观测到的非常低的Vs速度。当软流层上升以填充俯冲的法拉隆板留下的空间时,由于减压和湿地幔固相线减少,可能导致软流层部分熔融。

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