Direct observations of transient weakening during phase transformations in quartz and olivine

IF 15.7 1区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY
Andrew J. Cross, Rellie M. Goddard, Kathryn M. Kumamoto, David L. Goldsby, Lars N. Hansen, Haiyan Chen, Diede Hein, Christopher A. Thom, M. Adaire Nehring, Thomas Breithaupt, David Wallis
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引用次数: 0

Abstract

Phase transformations are widely invoked as a source of rheological weakening during subduction, continental collision, mantle convection and various other geodynamic phenomena. However, despite more than half a century of research, the likelihood and magnitude of such weakening in nature remain poorly constrained. Here we use experiments performed on a synchrotron beamline to reveal transient weakening of up to three orders of magnitude during the polymorphic quartz to coesite (SiO2) and olivine to ringwoodite (Fe2SiO4) phase transitions. Weakening becomes increasingly prominent as the transformation outpaces deformation. We suggest that this behaviour is broadly applicable among silicate minerals undergoing first-order phase transitions and examine the likelihood of weakening due to the olivine-spinel, (Mg,Fe)2SiO4, transformation during subduction. Modelling suggests that cold, wet slabs are most susceptible to transformational weakening, consistent with geophysical observations of slab stagnation in the mantle transition zone beneath the western Pacific. Our study highlights the importance of incorporating transformational weakening into geodynamic simulations and provides a quantitative basis for doing so.

Abstract Image

石英和橄榄石相变过程中瞬态减弱的直接观察
在俯冲、大陆碰撞、地幔对流和其他各种地球动力学现象中,相变被广泛地认为是流变弱化的一个来源。然而,尽管经过了半个多世纪的研究,自然界中这种减弱的可能性和程度仍然没有得到充分的限制。在这里,我们使用同步加速器光束线进行实验,揭示了在多晶石英到硅矿(SiO2)和橄榄石到环woodite (Fe2SiO4)相变过程中高达三个数量级的瞬态减弱。当变形超过变形时,弱化变得越来越突出。我们认为这种行为广泛适用于经历一级相变的硅酸盐矿物,并研究了由于橄榄石-尖晶石(Mg,Fe)2SiO4在俯冲过程中的转变而减弱的可能性。模拟表明,寒冷、潮湿的板块最容易受到转变减弱的影响,这与西太平洋下地幔过渡带板块停滞的地球物理观测相一致。我们的研究强调了将转变弱化纳入地球动力学模拟的重要性,并为这样做提供了定量基础。
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来源期刊
Nature Geoscience
Nature Geoscience 地学-地球科学综合
CiteScore
26.70
自引率
1.60%
发文量
187
审稿时长
3.3 months
期刊介绍: Nature Geoscience is a monthly interdisciplinary journal that gathers top-tier research spanning Earth Sciences and related fields. The journal covers all geoscience disciplines, including fieldwork, modeling, and theoretical studies. Topics include atmospheric science, biogeochemistry, climate science, geobiology, geochemistry, geoinformatics, remote sensing, geology, geomagnetism, paleomagnetism, geomorphology, geophysics, glaciology, hydrology, limnology, mineralogy, oceanography, paleontology, paleoclimatology, paleoceanography, petrology, planetary science, seismology, space physics, tectonics, and volcanology. Nature Geoscience upholds its commitment to publishing significant, high-quality Earth Sciences research through fair, rapid, and rigorous peer review, overseen by a team of full-time professional editors.
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