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Scattering Attenuation of the Martian Interior through Coda Wave Analysis. 基于尾波分析的火星内部散射衰减。
Pub Date : 2021-12-01 Epub Date: 2021-10-26 DOI: 10.1785/0120210253
Foivos Karakostas, Nicholas Schmerr, Ross Maguire, Quancheng Huang, Doyeon Kim, Vedran Lekic, Ludovic Margerin, Ceri Nunn, Sabrina Menina, Taichi Kawamura, Philippe Lognonné, Domenico Giardini, Bruce Banerdt

We investigate the scattering attenuation characteristics of the Martian crust and uppermost mantle to understand the structure of the Martian interior. We examine the energy decay of the spectral envelopes for 21 high-quality Martian seismic events from Sol 128 to Sol 500 of InSight operations. We use the model of Dainty et al. (1974b) to approximate the behavior of energy envelopes resulting from scattered wave propagation through a single diffusive layer over an elastic half-space. Using a grid search, we mapped the layer parameters that fit the observed InSight data envelopes. The single diffusive layer model provided better fits to the observed energy envelopes for High Frequency (HF) and Very High Frequency (VF) than for the Low Frequency (LF) and Broadband (BB) events. This result is consistent with the suggested source depths (Giardini et al., 2020) for these families of events and their expected interaction with a shallow scattering layer. The shapes of the observed data envelopes do not show a consistent pattern with event distance, suggesting that the diffusivity and scattering layer thickness is non-uniform in the vicinity of InSight at Mars. Given the consistency in the envelope shapes between HF and VF events across epicentral distances and the tradeoffs between the parameters that control scattering, the dimensions of the scattering layer remain unconstrained but require that scattering strength decreases with depth and that the rate of decay in scattering strength is fastest near the surface. This is generally consistent with the processes that would form scattering structures in planetary lithospheres.

我们研究了火星地壳和最上层地幔的散射衰减特性,以了解火星内部的结构。我们研究了InSight操作中从Sol 128到Sol 500的21次高质量火星地震事件的光谱包络的能量衰减。我们使用Dainty等人(1974b)的模型来近似由散射波通过弹性半空间上的单个扩散层传播引起的能量包络的行为。使用网格搜索,我们映射了适合观测到的InSight数据包络的层参数。与低频(LF)和宽带(BB)事件相比,单扩散层模型对高频(HF)和甚高频(VF)事件的观测能量包络提供了更好的拟合。这一结果与这些事件家族的建议源深度(Giardini等人,2020)以及它们与浅散射层的预期相互作用一致。观测到的数据包络的形状没有显示出与事件距离一致的模式,这表明火星InSight附近的扩散率和散射层厚度是不均匀的。考虑到HF和VF事件在震中距离上的包络形状的一致性以及控制散射的参数之间的权衡,散射层的尺寸保持不受约束,但要求散射强度随深度减小,并且散射强度的衰减率在表面附近最快。这通常与行星岩石圈中形成散射结构的过程一致。
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引用次数: 15
Potential Pitfalls in the Analysis and Structural Interpretation of Seismic Data from the Mars InSight Mission. 火星洞察号任务地震数据分析和结构解释中的潜在缺陷。
Pub Date : 2021-01-01 Epub Date: 2021-10-12 DOI: 10.1785/0120210123
D Kim, P Davis, V Lekić, R Maguire, N Compaire, M Schimmel, E Stutzmann, J C E Irving, P Lognonné, J-R Scholz, J Clinton, G Zenhäusern, N Dahmen, S Deng, A Levander, M P Panning, R F Garcia, D Giardini, K Hurst, B Knapmeyer-Endrun, F Nimmo, W T Pike, L Pou, N Schmerr, S C Stähler, B Tauzin, R Widmer-Schnidrig, W B Banerdt

The Seismic Experiment for Interior Structure (SEIS) of the InSight mission to Mars, has been providing direct information on Martian interior structure and dynamics of that planet since it landed. Compared to seismic recordings on Earth, ground motion measurements acquired by SEIS on Mars are made under dramatically different ambient noise conditions, but include idiosyncratic signals that arise from coupling between different InSight sensors and spacecraft components. This work is to synthesize what is known about these signal types, illustrate how they can manifest in waveforms and noise correlations, and present pitfalls in structural interpretations based on standard seismic analysis methods. We show that glitches, a type of prominent transient signal, can produce artifacts in ambient noise correlations. Sustained signals that vary in frequency, such as lander modes which are affected by variations in temperature and wind conditions over the course of the Martian Sol, can also contaminate ambient noise results. Therefore, both types of signals have the potential to bias interpretation in terms of subsurface layering. We illustrate that signal processing in the presence of identified nonseismic signals must be informed by an understanding of the underlying physical processes in order for high fidelity waveforms of ground motion to be extracted. While the origins of most idiosyncratic signals are well understood, the 2.4 Hz resonance remains debated and the literature does not contain an explanation of its fine spectral structure. Even though the selection of idiosyncratic signal types discussed in this paper may not be exhaustive, we provide guidance on best practices for enhancing the robustness of structural interpretations.

洞察号火星探测任务的内部结构地震实验(SEIS)自着陆以来一直提供火星内部结构和动力学的直接信息。与地球上的地震记录相比,SEIS在火星上获得的地面运动测量是在截然不同的环境噪声条件下进行的,但其中包括不同洞察号传感器和航天器组件之间耦合产生的特殊信号。这项工作是综合已知的这些信号类型,说明它们如何在波形和噪声相关性中表现出来,并提出基于标准地震分析方法的结构解释中的缺陷。我们表明,小故障是一种突出的瞬态信号,可以在环境噪声相关性中产生伪影。频率变化的持续信号,如着陆器模式,在火星太阳的过程中受到温度和风力条件变化的影响,也会污染环境噪声的结果。因此,这两种类型的信号都有可能对地下分层的解释产生偏差。我们说明,为了提取高保真的地面运动波形,在识别出非地震信号的情况下,必须通过理解潜在的物理过程来处理信号。虽然大多数特殊信号的起源已经被很好地理解,但2.4赫兹的共振仍然存在争议,文献中没有对其精细的频谱结构进行解释。尽管本文中讨论的特异信号类型的选择可能不是详尽的,但我们为增强结构解释的鲁棒性提供了最佳实践指导。
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引用次数: 30
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