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首页> 外文期刊>International Geology Review >Global Significance of a Sub-Moho Boundary Layer (SMBL) Deduced from High-Resolution Seismic Observations
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Global Significance of a Sub-Moho Boundary Layer (SMBL) Deduced from High-Resolution Seismic Observations

机译:高分辨率地震观测推论的亚莫霍边界层(SMBL)的全球意义

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摘要

We infer the fine structure of a sub-Moho boundary layer (SMBL) at the top of the lithospheric mantle from high-resolution seismic observations of Peaceful Nuclear Explosions (PNE) on super-long-range profiles in Russia. Densely recorded seismograms permit recognition of previously unknown features of teleseismic propagation of the well known P_n and S_n phases, such as a band of incoherent, scattered, high-frequency seismic energy, developing consistently from station to station, apparent velocities of sub-Moho material, and high-frequency energy to distances of more than 3000 km with a coda hand, incoherent at 10 km spacing and yet consistently observed to the end of the profiles. Estimates of the other key elements of the SMBL were obtained by finite difference calculations of wave propagation in elastic 2D models from a systematic grid search through parameter space. The SMBL consists of randomly distributed, mild velocity fluctuations of 2 percent or schlieren of sigh aspect ratios (>=40) with long horizontal extent (approx 20 km) and therefore as thin as 0.5 km only; SMBL thickness is 60-100 km. It is suggested that the SMBL is of global significance as the physical base of the platewide observed high-frequency phases P_n and S_n. It is shown that wave propagation in the SMBL waveguide is insensitive to the background velocity distribution on which its schlieren are superimposed. This explains why the P_n and S_n phases traverse geological provinces of various age, heat flow, crustal thickness, and tectonic regimes. Their propagation appears to be independent of age, temperature, pressure, and stress. Dynamic stretching of mantle material during subduction or flow, possibly combined with chemical differentiation have to be considered as scale-forming processes in the upper mantle. However, it is difficult to distinguish with the present sets of P_n/S_n array data whether (and also where) the boundary layer is a frozen-in feature of paleo-processes or whether it is a response to an on-going processes; nevertheless, the derived quantitative estimates of the SMBL properties provide important constraints for any hypothesis on scale-forming processes. Models to be tested by future numerical and field experiments are, for example, repeated subduction-convection stretching of oceanic lithosphere (marble-cake model) and schlieren formation at mid-ocean ridges. It is also proposed that the modeling of the observed blocking of P_n and S_n propagation at active plate margins offers a new tool to study the depth range of tectonics below the crust-mantle boundary. Finally, the deduced schlieren structure of the SMBL closes an important scale gap of three to four orders of magnitude between structural dimensions studied in petrological analysis of mantle samples (xenoliths or outcrop of oceanic lithosphere) and those imaged in classical seismological studies of the lithosphere.
机译:我们从对俄罗斯超远程剖面的和平核爆炸(PNE)的高分辨率地震观测中推断出岩石圈地幔顶部的亚莫霍边界层(SMBL)的精细结构。密集记录的地震图可以识别众所周知的P_n和S_n相的远震传播的以前未知的特征,例如不相干的,分散的高频地震能量带,在各个站之间一致地发展,亚莫霍面材料的视在速度,并且使用尾巴将高频能量传输到超过3000 km的距离,在10 km的间隔处是不连贯的,但一直到轮廓结束时都可以观察到。 SMBL其他关键要素的估计值是通过对弹性2D模型中的波传播进行有限差分计算而得,它是通过对参数空间的系统网格搜索而得出的。 SMBL由2%的随机分布的,轻微的速度波动或叹息长宽比(> = 40)的斜纹组成,水平范围长(约20 km),因此只有0.5 km薄。 SMBL厚度为60-100 km。建议SMBL作为整个板块观测到的高频相位P_n和S_n的物理基础具有全球意义。结果表明,SMBL波导中的波传播对其叠加其有色金属的背景速度分布不敏感。这解释了为什么P_n和S_n相遍历各种年龄,热流,地壳厚度和构造类型的地质区域。它们的繁殖似乎与年龄,温度,压力和压力无关。俯冲或流动过程中地幔物质的动态拉伸,可能与化学差异结合在一起,必须被视为上地幔的结垢过程。但是,很难用当前的P_n / S_n数组数据集来区分边界层(以及在何处)边界层是古过程的冻结特征还是对正在进行的过程的响应;但是,SMBL特性的定量估计为结垢过程的任何假设提供了重要的约束条件。将要通过未来的数值和现场实验测试的模型是,例如,海洋岩石圈的反复俯冲-对流拉伸(大理石蛋糕模型)和中海脊的蛇纹石形成。还提出,在活动板块边缘观测到的P_n和S_n传播阻塞的建模提供了一种研究地壳-地幔边界以下构造的深度范围的新工具。最后,推论出的SMBL的schlieren结构缩小了地幔岩石学(海洋岩石圈的裸岩或露头)研究的结构尺寸与经典岩石学地震研究成像的结构尺寸之间三到四个数量级的重要尺度差距。

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