地震各向异性表明大西洋中脊下有组织的熔体有助于海底扩张

IF 4.8 1区 地球科学 Q1 GEOLOGY Geology Pub Date : 2023-08-04 DOI:10.1130/g51550.1
J. Kendall, D. Schlaphorst, C. Rychert, N. Harmon, M. Agius, S. Tharimena
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引用次数: 1

摘要

岩石圈板块在大洋中脊分叉,软流圈地幔物质相应上升。上升的材料减压,这可能导致部分熔化,可能会影响系统的驱动力。然而,当熔体迁移到山脊轴时,熔体的几何形状和空间分布仍存在争议。有组织的熔体组构会导致强烈的地震各向异性,这可以诊断熔体,尽管这通常在山脊处没有发现。我们提出了2016年3月至2017年3月在赤道大西洋中脊(MAR)附近0−80 Ma岩石圈上部署的39个海底地震仪阵列的各向异性约束。局部和SKS测量显示远离脊轴的各向异性快速方向,这与具有短延迟时间的板运动引起的应变和相关组构一致,δt(<1.1s)。在山脊轴附近,我们发现了几个山脊平行的快速分裂方向,ξ,SKSδt要长得多(1.7−3.8s)。这可以通过片状熔体袋的脊状平行亚垂直方向来最好地解释。这一观察结果与在其他山脊上观察到的各向异性图案大不相同,后者通常反映与板块运动有关的构造。一种可能性是,较厚的亚脊岩石圈在较慢扩展中心下具有陡峭的亚脊地形,将熔体集中到垂直的、平行于山脊的熔体带中,这有效地削弱了板块。相关浮力提升了次脊板块,提供了更大的势能并增强了板块的驱动力。
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Seismic anisotropy indicates organized melt beneath the Mid-Atlantic Ridge aids seafloor spreading
Lithospheric plates diverge at mid-ocean ridges and asthenospheric mantle material rises in response. The rising material decompresses, which can result in partial melting, potentially impacting the driving forces of the system. Yet the geometry and spatial distribution of the melt as it migrates to the ridge axis are debated. Organized melt fabrics can cause strong seismic anisotropy, which can be diagnostic of melt, although this is typically not found at ridges. We present anisotropic constraints from an array of 39 ocean-bottom seismometers deployed on 0−80 Ma lithosphere from March 2016 to March 2017 near the equatorial Mid-Atlantic Ridge (MAR). Local and SKS measurements show anisotropic fast directions away from the ridge axis, which are consistent with strain and associated fabric caused by plate motions with short delay times, δt (<1.1 s). Near the ridge axis, we find several ridge-parallel fast splitting directions, ϕ, with SKS δt that are much longer (1.7−3.8 s). This is best explained by ridge-parallel sub-vertical orientations of sheet-like melt pockets. This observation is much different than anisotropic patterns observed at other ridges, which typically reflect fabric related to plate motions. One possibility is that thicker sub-ridge lithosphere with steep sub-ridge topography beneath slower spreading centers focuses melt into vertical, ridge-parallel melt bands, which effectively weakens the plate. Associated buoyancy forces elevate the sub-ridge plate, providing greater potential energy and enhancing the driving forces of the plates.
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来源期刊
Geology
Geology 地学-地质学
CiteScore
10.00
自引率
3.40%
发文量
228
审稿时长
6.2 months
期刊介绍: Published since 1973, Geology features rapid publication of about 23 refereed short (four-page) papers each month. Articles cover all earth-science disciplines and include new investigations and provocative topics. Professional geologists and university-level students in the earth sciences use this widely read journal to keep up with scientific research trends. The online forum section facilitates author-reader dialog. Includes color and occasional large-format illustrations on oversized loose inserts.
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