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Savani: A variable resolution whole-mantlemodel of anisotropic shear velocity variations based on multiple data sets

机译:Savani:基于多个数据集的各向异性剪切速度变化的可变分辨率全幔模型

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We present a tomographic model of radially anisotropic shear velocity variations in the Earth’s mantle based on a new compilation of previously published data sets and a variable block parameterization, adapted to local raypath density. We employ ray-theoretical sensitivity functions to relate surface wave and body wave data with radially anisotropic velocity perturbations. Our database includes surface wave phase delays from fundamental modes up to the sixth overtone, measured at periods between 25 and 350 s, as well as cross-correlation traveltimes of major body wave phases. Before inversion, we apply crustal corrections using the crustal model CRUST2.0, and we account for azimuthal anisotropy in the upper mantle using ray-theoretical corrections based on a global model of azimuthal anisotropy. While being well correlated with earlier models at long spatial wavelength, our preferred solution, savani, additionally delineates a number of previously unidentified structures due to its improved resolution in areas of dense coverage. This is because the density of the inverse grid ranges between 1.25? in well-sampled and 5? in poorly sampled regions, allowing us to resolve regional structure better than it is typically the case in global S wave tomography. Our model highlights (i) a distinct ocean-continent anisotropic signature in the uppermost mantle, (ii) an oceanic peak in above average ξ<1 which is shallower than in previous models and thus in better agreement with estimates of lithosphere thickness, and (iii) a long-wavelength pattern of ξ<1 associated with the large low-shear velocity provinces in the lowermost mantle.
机译:我们基于先前发布的数据集的新汇编和适用于局部射线路径密度的可变块参数化,提供了地幔径向各向异性剪切速度变化的层析成像模型。我们使用射线理论灵敏度函数将表面波和体波数据与径向各向异性速度摄动相关联。我们的数据库包括从基本模式到第六个泛音的表面波相位延迟(在25到350 s之间的时间段内测量),以及主体波相位的互相关传播时间。在反演之前,我们使用地壳模型CRUST2.0进行地壳校正,并使用基于整体方位角各向异性模型的射线理论校正来解释上地幔的方位角各向异性。我们的首选解决方案savani在较长的空间波长下与早期模型具有很好的关联性,此外,由于其在密集覆盖区域中的分辨率有所提高,因此可以描绘出许多以前无法识别的结构。这是因为反栅格的密度在1.25Ω到1500Ω之间。在采样良好的5个?在采样较差的区域中,与全局S波断层扫描相比,它使我们能够更好地解析区域结构。我们的模型强调了(i)最上地幔的一个明显的海陆各向异性特征,(ii)高于平均ξ<1的海洋峰,它比以前的模型要浅,因此与岩石圈厚度的估计更好地吻合,并且( iii)与最低地幔中较大的低剪切速度省份相关的ξ<1的长波模式。

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