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首页> 外文期刊>Earth and Planetary Science Letters: A Letter Journal Devoted to the Development in Time of the Earth and Planetary System >Layered azimuthal anisotropy of Rayleigh wave phase velocities in the European Alpine lithosphere inferred from ambient noise
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Layered azimuthal anisotropy of Rayleigh wave phase velocities in the European Alpine lithosphere inferred from ambient noise

机译:由环境噪声推断欧洲高山岩石圈瑞利波相速度的层状方位各向异性

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摘要

Passive seismic imaging of the earth is a rapidly developing field of study. Recent advances in noise cross correlation techniques allow imaging of isotropic surface-wave and shear-wave velocities in areas where earthquake numbers and distributions are insufficient to implement traditional earthquake based tomography. Furthermore, advances in the theory underpinning surface wave inversion have led to depth-dependent mapping of seismic anisotropy in the lithosphere and upper asthenosphere. We show that by merging these two rapidly advancing fields we can invert noise-based phase velocity measurements for azimuthally anisotropic phase speed, thereby providing a highly resolved image of layered azimuthal anisotropy in continental crust. We apply this new algorithm in the western Alps, an area of complex lithospheric structure. Alpine crustal thickening results from continental collision, indentation of the Ivrea mantle into the middle crust of the European plate, rollback of the European lithospheric mantle, and crustal slicing. We find that anisotropy beneath the central Alps is stratified in two layers - one with an orogen-parallel fast direction above ~30. km depth and another with a strong orogen-perpendicular fast direction at greater depth. Although our resolution is reduced outside the central Alps, we map orogen-parallel anisotropy in the crust of the northern Alpine foreland. We interpret the results in the central Alps as first-order evidence for a model of azimuthal anisotropy in which (1) near-vertical emplacement of crustal slices following detachment of the lithospheric mantle from the crust gives rise to orogen-parallel fast directions of wave propagation in the crust, and (2) dominantly horizontal tectonics in the thickened crustal root and uppermost mantle yield orogen-perpendicular fast directions at greater depth.
机译:地球的被动地震成像是一个快速发展的研究领域。噪声互相关技术的最新进展允许在地震数量和分布不足以实施传统的基于地震层析成像的地区成像各向同性的表面波和剪切波速度。此外,支持表面波反演的理论的发展已导致岩石圈和软流圈上地震各向异性的深度依赖映射。我们表明,通过合并这两个快速推进的场,我们可以反转基于方位角各向异性相速度的基于噪声的相速度测量,从而提供大陆壳层状方位各向异性的高分辨率图像。我们将此新算法应用于复杂的岩石圈结构区域的西部阿尔卑斯山。高山地壳增厚是由于大陆碰撞,伊夫里亚地幔向欧洲板块中地壳的压入,欧洲岩石圈地幔的回滚以及地壳切片造成的。我们发现中央阿尔卑斯山下的各向异性分为两层-一层与造山带平行的快方向在〜30以上。 km深度,另一个在较大深度处具有强烈的造山带垂直方向。尽管我们在中部阿尔卑斯山以外地区的分辨率降低了,但我们在北部高山前陆的地壳中绘制了与造山带平行的各向异性。我们将中部阿尔卑斯山的结果解释为方位各向异性模型的一阶证据,其中(1)岩石圈地幔从地壳上脱离后,地壳切片的近乎垂直位置引起了造山带平行的快速波方向在地壳中传播,以及(2)在增厚的地壳根部和最上层地幔中占主导地位的水平构造在较大深度处产生造山带垂直的快速方向。

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