Crustal and uppermost mantle structures of the North American Midcontinent Rift revealed by joint full-waveform inversion of ambient-noise data and teleseismic P waves

IF 4.8 1区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS Earth and Planetary Science Letters Pub Date : 2024-06-19 DOI:10.1016/j.epsl.2024.118797
Bin He , Kai Wang , Tianshi Liu , Ting Lei , Nanqiao Du , Suzan van der Lee , Fiona Ann Darbyshire , Andrew Frederiksen , Hejun Zhu , David Lumley , Henry Halls , Qinya Liu
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Abstract

The Midcontinent Rift (MCR), hosting several world-class ore deposits, is the fossil remnant of a massive Mesoproterozoic rifting event (1.1 Ga) that did not lead to the formation of an ocean basin. To better understand the lithospheric processes associated with the rifting stage and its subsequent failure, we developed a novel full-waveform joint inversion method using ambient noise data and teleseismic P waves for this seismically inactive region. We apply this approach to three years (2011-2013) of seismic recordings from the Superior Province Rifting EarthScope Experiment (SPREE) (~12 km average station spacing) and the USArray Transportable Array (~70 km average station spacing), and obtain a new 3D high-resolution Vs model down to 100 km depth, as well as Vp and density models down to 60 km depth. The model shows major velocity anomalies in agreement with previous seismic studies for the western arm of the MCR. In particular, we observe high density (2.8-3.0 g/cm3), Vp (6.3-6.5 km/s), and Vs (3.6-3.7 km/s) structures in the shallow upper crust within the rift, likely associated with volcanic rocks. Similar to a previously identified underplated layer, we also observe extensive normal-to-high Vs (3.8-4.2 km/s) along the whole rift axis and Vp (6.8-7.5 km/s) beneath the northern segment of the rift within the lower crust. However, the Vs and Vp values are lower than average for typical underplated materials. We suggest that this underplated layer may represent a combination of different intrusive rock types (e.g., gabbro, anorthosite) developed during magma differentiation processes, or contamination of the mafic magma by surrounding crustal material, or intrusions of sills.

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通过环境噪声数据和远震 P 波的联合全波形反演揭示北美大陆中部裂谷的地壳和最上层地幔结构
中大陆裂谷(MCR)拥有多个世界级矿床,是中新生代大规模断裂事件(1.1 Ga)的化石遗迹,该断裂并没有导致洋盆的形成。为了更好地了解与断裂阶段及其随后的破坏相关的岩石圈过程,我们开发了一种新的全波形联合反演方法,利用环境噪声数据和远震 P 波对这一地震不活跃地区进行反演。我们将这种方法应用于三年(2011-2013 年)的地震记录,这些记录来自 Superior Province Rifting EarthScope Experiment (SPREE)(平均台站间距约 12 千米)和 USArray Transportable Array(平均台站间距约 70 千米),并获得了一个新的三维高分辨率 Vs 模型(深度可达 100 千米)以及 Vp 和密度模型(深度可达 60 千米)。该模型显示了主要的速度异常,与之前对 MCR 西臂的地震研究结果一致。特别是,我们在裂谷内的浅上地壳观察到高密度(2.8-3.0 克/立方厘米)、Vp(6.3-6.5 千米/秒)和 Vs(3.6-3.7 千米/秒)结构,可能与火山岩有关。与之前确定的下plated层类似,我们还在整个裂谷轴线上观测到广泛的正常至高Vs(3.8-4.2 km/s)和Vp(6.8-7.5 km/s),位于下地壳裂谷北段下方。然而,Vs 和 Vp 值低于典型的欠镀层材料的平均值。我们认为,这一下叠层可能是岩浆分异过程中发育的不同侵入岩类型(如辉长岩、正长岩)的组合,或者是岩浆受到周围地壳物质的污染,或者是岩屑的侵入。
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来源期刊
Earth and Planetary Science Letters
Earth and Planetary Science Letters 地学-地球化学与地球物理
CiteScore
10.30
自引率
5.70%
发文量
475
审稿时长
2.8 months
期刊介绍: Earth and Planetary Science Letters (EPSL) is a leading journal for researchers across the entire Earth and planetary sciences community. It publishes concise, exciting, high-impact articles ("Letters") of broad interest. Its focus is on physical and chemical processes, the evolution and general properties of the Earth and planets - from their deep interiors to their atmospheres. EPSL also includes a Frontiers section, featuring invited high-profile synthesis articles by leading experts on timely topics to bring cutting-edge research to the wider community.
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