Department of Earth and Planetary Sciences, University of California Davis , One Shields Ave., Davis, CA 95616 , USA.
Philos Trans A Math Phys Eng Sci. 2019 Feb 25;377(2139):20180009. doi: 10.1098/rsta.2018.0009.
The thermal and therefore physical state of magma bodies within the crust controls the processes and time scales required to mobilize magmas before eruptions, which in turn are critical to hazard assessment. Crystal records can be used to reconstruct magma reservoir histories, and the resulting time and length scales are converging with those accessible through numerical modelling of magma system dynamics. The goal of this contribution is to summarize constraints derived from crystal chronometry (radiometric dating and modelling intracrystalline diffusion durations), in order to facilitate use of these data by researchers in other fields. Crystallization ages of volcanic minerals typically span a large range (10-10 years), recording protracted activity in a given magma reservoir. However, diffusion durations are orders of magnitude shorter, indicating that the final mixing and assembly of erupted magma bodies is rapid. Combining both types of data in the same samples indicates that crystals are dominantly stored at near- or sub-solidus conditions, and are remobilized rapidly prior to eruptions. These observations are difficult to reconcile with some older numerical models of magma reservoir dynamics. However, combining the crystal-scale observations with models which explicitly incorporate grain-scale physics holds great potential for understanding dynamics within crustal magma reservoirs. This article is part of the Theo Murphy meeting issue 'Magma reservoir architecture and dynamics'.
地壳中岩浆体的热状态(因此也是物理状态)控制着喷发前岩浆运移所需的过程和时间尺度,而这对于灾害评估至关重要。晶体记录可用于重建岩浆储层历史,由此得出的时间和长度尺度与通过岩浆系统动力学数值模拟获得的尺度趋于一致。本文的目的是总结晶体年代学(放射性定年和模拟晶体内部扩散持续时间)得出的约束条件,以便为其他领域的研究人员提供便利。火山矿物的结晶年龄通常跨度很大(10-10 年),记录了给定岩浆储层中长时间的活动。然而,扩散持续时间短了几个数量级,表明喷发前喷出的岩浆体的最终混合和组装非常迅速。在同一样品中结合这两种类型的数据表明,晶体主要以近固相线或亚固相线条件储存,并在喷发前迅速重新迁移。这些观察结果与一些较旧的岩浆储层动力学数值模型难以协调。然而,将晶体尺度的观察结果与明确包含晶粒尺度物理特性的模型相结合,对于理解地壳中岩浆储层的动力学具有巨大潜力。本文是“岩浆储层结构和动力学”Theo Murphy 会议专刊的一部分。