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Constraints on Heterogeneity throughout the Earth's Mantle from Observations of Scattered Seismic Waves.

机译:从散射地震波的观测来看,整个地幔的非均质性受到限制。

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We place constraints on the amounts and length scales of seismic velocity variations throughout the mantle that are beyond the resolving capabilities of seismic tomography. We model global stacks of various seismic phases that are thought to have a scattering origin, using a Monte Carlo phonon method.;In Chapter 2, we forward model stacks of over 10,000 high-frequency (~1 Hz) PKP precursor waveforms with velocity perturbations of ~0.1% distributed throughout the lowermost mantle, resolving a debate between older studies. We confirm that models where scattering is distributed uniformly throughout the lowermost mantle better match the observations than those where scattering is restricted to a thin region just above the core--mantle boundary.;In Chapter 3, we characterize the frequency dependence of PKP precursors at central frequencies ranging from 0.5 to 4 Hz. At greater frequencies, we observe more scattered energy, particularly at shorter ranges. We model this observation by invoking heterogeneity at length scales from 2 to 30 km. Amplitudes at 0.5 Hz, in particular, suggest the presence of more heterogeneity at scales >8 km than present in previously published models.;In Chapter 4, we constrain the heterogeneity spectrum of Earth's upper mantle at scales from a few kilometers to tens-of-thousands of kilometers using observations from high-frequency scattering, long-period scattering, and tomography. We explore geodynamically plausible scenarios that might be responsible for the rms and fall-off rate of the proposed spectrum, including a self-similar mixture of basalt and harzburgite.;In Chapter 5, we stack a large global dataset of 1-Hz PKKP waveforms to constrain globally-averaged properties of PKKP precursors. We propose a new 1-D reference model that fits both our PKKP precursor amplitudes and constraints on absolute PKP bc travel times. Our globally averaged PKKP precursor observations are consistent with random CMB topography with rms variations of ~440 m and a horizontal correlation length of ~7 km.;Finally, in Chapter 6, we discuss outstanding challenges and future prospects for deep Earth scattering research.
机译:我们对整个地幔中地震速度变化的数量和长度尺度施加了限制,这超出了地震层析成像的解决能力。我们使用蒙特卡洛声子方法对被认为具有散射起源的各个地震相的整体叠加层进行建模;在第二章中,我们转发了具有速度扰动的10,000多个高频(〜1 Hz)PKP前体波形的叠加层约有0.1%的人分布在最低的地幔中,从而解决了较早研究之间的争论。我们确认散射在整个最下部地幔中均匀分布的模型比散射被限制在核心-地幔边界上方的薄区域中的模型更好地与观测结果相匹配;在第三章中,我们描述了PKP前体在以下位置的频率依赖性中心频率范围从0.5到4 Hz。在较高的频率下,我们观察到更多的散射能量,尤其是在较短的范围内。我们通过在2到30 km的长度尺度上调用异质性来对此观察进行建模。特别是在0.5 Hz处的振幅表明,在大于8 km的尺度上存在比以前发表的模型更大的异质性。;在第4章中,我们将地球上地幔的异质性谱限制在从几千米到数十使用高频散射,长周期散射和断层扫描的观测结果,测量数千公里。我们探索了可能对拟议频谱的均方根和衰减率负责的地球动力学可行方案,包括玄武岩和哈兹伯格石的自相似混合物。;在第5章中,我们堆叠了一个1Hz PKKP波形的大型全局数据集限制PKKP前体的全球平均性能。我们提出了一个新的一维参考模型,该模型既适合我们的PKKP前体振幅,又适合绝对PKP bc行程时间的约束。我们在全球范围内平均获得的PKKP前兆观测值与均方根变化约为440 m,水平相关长度约为7 km的随机CMB地形一致;最后,在第6章中,我们讨论了深层地球散射研究的突出挑战和未来前景。

著录项

  • 作者

    Mancinelli, Nicholas John.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Geophysics.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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