从单个手持样本中火山和恒星锆石微量元素变异性的全球比较中洞察岩浆储层动力学

IF 2.9 2区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS
Barbara C. Ratschbacher, C. Brenhin Keller, Kari M. Cooper
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引用次数: 0

摘要

从单个手工样本中分离出来的锆石的微量元素组成趋势被用来推断岩浆储层的动态过程。在此,我们汇编了已发表的锆石微量元素化学成分,以量化从单个火山岩和深成岩手持样本中观察到的锆石成分范围之间的系统性差异,并将这些结果与地球化学建模进行比较,以得出对岩浆储层动力学的影响。我们发现,这两种岩石类型的手持样本尺度变异范围都很大(即变异系数范围很大),但深成岩样本和火山岩样本的平均变异性没有系统性差异(即平均变异系数没有差异)。这表明,与喷发有关的动态过程并不一定需要作为一个基本过程,才能在柱状岩样本记录的储层动态过程之外,产生手持样本尺度的成分异质性。长英岩系统(SiO2重量百分比为68.5)的建模表明,长英岩火山岩和柱状岩手样中相似的平均变异性不能通过岩浆储层中局部成分不同的熔体的封闭系统结晶(即晶体蘑菇中孤立的熔体袋)来再现,而需要至少两种长英岩熔体成分在小空间尺度上的混合。这项研究为重点研究单个火山-岩浆系统提供了一个框架,以探索岩浆库过程的时间和长度尺度如何记录岩浆和火山锆石成分变异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Insights Into Magma Reservoir Dynamics From a Global Comparison of Volcanic and Plutonic Zircon Trace Element Variability in Individual Hand Samples

Insights Into Magma Reservoir Dynamics From a Global Comparison of Volcanic and Plutonic Zircon Trace Element Variability in Individual Hand Samples

Trace element compositional trends in zircons separated from single hand samples have been used to infer dynamic processes in magma reservoirs. Here, we compile published zircon trace element chemistry to quantify any systematic difference between the range of compositions observed in zircon from individual volcanic and plutonic hand samples and compare these results with geochemical modeling to derive implications for magma reservoir dynamics. We find that both rock types span a wide range of hand-sample scale variability (i.e., wide range of coefficients of variation), but there is no systematic difference in the average variability between plutonic and volcanic samples (i.e., no difference in the mean coefficient of variation). This indicates that dynamic processes related to eruption are not necessarily required as a fundamental process to create hand sample-scale compositional heterogeneity beyond what is present due to dynamic processes in the reservoir recorded in plutonic samples. Modeling of felsic systems (>68.5 wt.% SiO2) indicates that the similar average variability in felsic volcanic and plutonic hand samples cannot be reproduced by closed-system crystallization of compositionally distinct melts locally within a magma reservoir (i.e., isolated melt pockets in a crystal mush) but requires mixing of at least two felsic melt compositions at a small spatial scale. This study provides a framework for focused studies on individual volcanic-plutonic systems exploring how plutonic and volcanic zircon compositional variability records the time and length scales of magma reservoir processes.

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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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