岩浆房对冰卸载的响应:在南极西部裂谷系火山作用中的应用

IF 2.9 2区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS Geochemistry Geophysics Geosystems Pub Date : 2024-11-27 DOI:10.1029/2024GC011743
A. N. Coonin, C. Huber, J. Troch, M. Townsend, K. Scholz, B. S. Singer
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引用次数: 0

摘要

火山活动已被证明以多种方式影响地球气候。其中一个例子是,靠近地表冰的火山喷发将促进冰融化。反过来,与冰盖融化相关的地壳卸载影响了地下岩浆管道系统的内部动力学。安第斯山脉最近两个冰期旋回的地质年代学数据表明,冰川作用和火山作用可能通过一个正反馈回路相互作用。目前,准确的海平面预测取决于我们对南极西部冰盖稳定性的预测能力,因此需要考虑冰下火山-冰川消融的双向过程。南极西部冰盖特别容易崩塌,但它位于活跃火山裂谷之上的位置很少被考虑。卸冰加深了融化区,改变了地壳应力场,影响了岩脉的起裂、扩展和止裂条件。然而,对内部岩浆房动力学和长期喷发行为的影响仍然难以捉摸。考虑到南极西部卸载引发的火山活动可能会导致冰损失预测的不确定性,我们采用了先前发表的热力学岩浆室模型,并通过规定的静岩压力降低来模拟冰负荷的缩小。研究了不同卸载情景对岩浆挥发性分配和喷发轨迹的影响。考虑到千米厚冰盖的移除,我们证明了卸载的速度影响了喷发的累积质量,从而影响了释放到冰中的热量。这些发现为了解南极洲西部和其他冰下火山环境中复杂的火山-冰相互作用提供了基本的见解。
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Magma Chamber Response to Ice Unloading: Applications to Volcanism in the West Antarctic Rift System

Volcanic activity has been shown to affect Earth's climate in a myriad of ways. One such example is that eruptions proximate to surface ice will promote ice melting. In turn, the crustal unloading associated with melting an ice sheet affects the internal dynamics of the underlying magma plumbing system. Geochronologic data from the Andes over the last two glacial cycles suggest that glaciation and volcanism may interact via a positive feedback loop. At present, accurate sea-level predictions hinge on our ability to forecast the stability of the West Antarctic Ice Sheet, and thus require consideration of two-way subglacial volcano-deglaciation processes. The West Antarctic Ice Sheet is particularly vulnerable to collapse, yet its position atop an active volcanic rift is seldom considered. Ice unloading deepens the zone of melting and alters the crustal stress field, impacting conditions for dike initiation, propagation, and arrest. However, the consequences for internal magma chamber dynamics and long-term eruption behavior remain elusive. Given that unloading-triggered volcanism in West Antarctica may contribute to the uncertainty of ice loss projections, we adapt a previously published thermomechanical magma chamber model and simulate a shrinking ice load through a prescribed lithostatic pressure decrease. We investigate the impacts of varying unloading scenarios on magma volatile partitioning and eruptive trajectory. Considering the removal of km-thick ice sheets, we demonstrate that the rate of unloading influences the cumulative mass erupted and consequently the heat released into the ice. These findings provide fundamental insights into the complex volcano-ice interactions in West Antarctica and other subglacial volcanic settings.

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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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