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首页> 外文期刊>Earth and Planetary Science Letters: A Letter Journal Devoted to the Development in Time of the Earth and Planetary System >Non-Newtonian rheology of crystal-bearing magmas and implications for magma ascent dynamics
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Non-Newtonian rheology of crystal-bearing magmas and implications for magma ascent dynamics

机译:含晶体岩浆的非牛顿流变学及其对岩浆上升动力学的启示

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The eruptive dynamics of volcanic systems are largely controlled by the viscosity of deforming magma. Here we report the results of a series of high-temperature, high-pressure experiments at conditions relevant for volcanic conduits (250 MPa confining pressure and temperature between 500 degrees C and 900 degrees C) that were undertaken to investigate the theology of magma with crystal fractions varying between 0.5 and 0.8 (50 to 80 wt.%) at different strain-rate conditions. The experiments demonstrate that the presence of crystals increases the relative viscosity (ratio between the viscosity of the mixture and the viscosity of the melt phase) of magmas and additionally induces a decrease of the relative viscosity with increasing strain-rate (shear thinning, non-Newtonian behavior). The experimental results, combined with existing data at low crystal fractions (0-0.3), were used to develop a semiempirical parameterization that describes the variations of relative viscosity for crystal fractions between 0 and 0.8 and accounts for the complex non-Newtonian theology of crystal-bearing magmas. The new parameterization, included into numerical models simulating the magma ascent dynamics, reveals that strain-rate-dependent theology significantly modifies the dynamic behavior inside volcanic conduits, particularly affecting the magma fragmentation conditions. (c) 2007 Elsevier B.V All rights reserved.
机译:火山系统的喷发动力学在很大程度上受岩浆变形黏度的控制。在这里,我们报告了一系列与火山岩导管有关的条件(250 MPa围压和500摄氏度至900摄氏度之间的温度)下的高温,高压实验的结果,旨在研究岩浆与晶体的关系。在不同的应变速率条件下,馏分在0.5至0.8(50至80重量%)之间变化。实验表明,晶体的存在增加了岩浆的相对粘度(混合物的粘度与熔融相的粘度之比),并随着应变率的增加(剪切稀化,非结晶)引起了相对粘度的降低。牛顿行为)。实验结果与低结晶度(0-0.3)时的现有数据相结合,用于开发半经验参数化,该参数化描述了0至0.8之间的结晶度相对粘度的变化,并解释了复杂的非牛顿晶体学轴承岩浆。包括在模拟岩浆上升动力学的数值模型中的新参数化表明,应变率相关的神学显着改变了火山岩导管内部的动力学行为,特别是影响了岩浆破碎条件。 (c)2007 Elsevier B.V保留所有权利。

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