通过虚拟现实技术全面了解地幔羽流形状

IF 2.9 2区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS Geochemistry Geophysics Geosystems Pub Date : 2024-06-15 DOI:10.1029/2024GC011517
Qianyi Lu, Maxwell L. Rudolph
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引用次数: 0

摘要

地幔羽流的形状对地幔粘度、密度结构和流动模式很敏感。越来越多的全球层析成像模型揭示了下地幔中宽阔的羽流导管和中上地幔中高度倾斜的导管。以往的研究大多依赖二维切片来分析羽流形状,但要充分研究三维羽流结构的复杂性,需要更有效的可视化方法。在这里,我们使用基于沉浸式头显的虚拟现实(VR)来可视化全波形全球层析成像模型SEMUCB-WM1和GLAD-M25。我们根据羽流过量温度与 VS 异常(δVS)之间的关系,制定了识别羽流导管的标准。我们追踪了 20 条主要的羽流导管,测量了导管相对于热点的方位角和距离偏移,计算了倾斜角,并评估了所有追踪导管的 δVS。我们将所追踪的导管与全球地幔对流模型预测的导管和垂直导管进行了比较。无论采用哪种层析成像模式,沿每个层析成像模式追踪的导管的波速变化都慢于模型或垂直导管。跟踪导管的形状往往与模型导管有很大不同。羽流的积聚和次级羽流的出现可能是成分变化、相变、小尺度对流和粘度变化等综合作用的结果,这可能是造成观测到的羽流形状复杂的原因。沿追踪导管的 δVS 变化和复杂的羽流形状表明,许多羽流起源于热化学。
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A Synoptic View of Mantle Plume Shapes Enabled by Virtual Reality

The shapes of mantle plumes are sensitive to mantle viscosity, density structure, and flow patterns. Increasingly, global tomographic models reveal broad plume conduits in the lower mantle and highly tilting conduits in the mid and upper mantle. Previous studies mostly relied on 2D slices to analyze plume shapes, but fully investigating the complexity of 3D plume structures requires more effective visualization methods. Here, we use immersive headset-based virtual reality (VR) to visualize the full-waveform global tomographic models SEMUCB-WM1 and GLAD-M25. We develop criteria for the identification of plume conduits based on the relationship between the plume excess temperature and the VS anomaly (δVS). We trace 20 major plume conduits, measure the offsets of the conduits in azimuth and distance with respect to the hotspots, calculate the tilt angle, and evaluate the δVS along all traced conduits. We compare our traced conduits with the conduits predicted by global mantle convection models and vertical conduits. The wavespeed variations along conduits traced from each tomographic model are slower than modeled or vertical conduits, regardless of which tomographic model they are evaluated in. The shapes of traced conduits tend to differ greatly from modeled conduits. Plume ponding and the emergence of secondary plumes, which could result from a combination of compositional variations, phase transitions, small-scale convection, and variations in viscosity, can contribute to the complex observed plume shapes. The variation of δVS along the traced conduits and complex plume shapes suggest a thermochemical origin of many plumes.

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来源期刊
Geochemistry Geophysics Geosystems
Geochemistry Geophysics Geosystems 地学-地球化学与地球物理
CiteScore
5.90
自引率
11.40%
发文量
252
审稿时长
1 months
期刊介绍: Geochemistry, Geophysics, Geosystems (G3) publishes research papers on Earth and planetary processes with a focus on understanding the Earth as a system. Observational, experimental, and theoretical investigations of the solid Earth, hydrosphere, atmosphere, biosphere, and solar system at all spatial and temporal scales are welcome. Articles should be of broad interest, and interdisciplinary approaches are encouraged. Areas of interest for this peer-reviewed journal include, but are not limited to: The physics and chemistry of the Earth, including its structure, composition, physical properties, dynamics, and evolution Principles and applications of geochemical proxies to studies of Earth history The physical properties, composition, and temporal evolution of the Earth''s major reservoirs and the coupling between them The dynamics of geochemical and biogeochemical cycles at all spatial and temporal scales Physical and cosmochemical constraints on the composition, origin, and evolution of the Earth and other terrestrial planets The chemistry and physics of solar system materials that are relevant to the formation, evolution, and current state of the Earth and the planets Advances in modeling, observation, and experimentation that are of widespread interest in the geosciences.
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