首页> 外文期刊>Journal of Volcanology and Geothermal Research >Numerical Modeling Of The Development Of Small-scale Magmatic Emulsions By Korteweg Stress Driven Flow
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Numerical Modeling Of The Development Of Small-scale Magmatic Emulsions By Korteweg Stress Driven Flow

机译:Korteweg应力驱动流发展小型岩浆乳液的数值模拟

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摘要

The occurrence of micron to millimeter size globular heterogeneities in igneous rocks is frequently explained by processes of liquid immiscibility. However, such textures have also been documented in miscible magmatic pairs. In this study, the ability of miscible magmas to develop transient surface tensions and mimic the behavior of immiscible liquids is tested for the whole spectrum of magmatic compositions. We implemented a numerical model that includes the effect of gradient stresses (namely Korteweg stress) in order to investigate the role of such stresses in the evolution of diffusive interfaces. The results show that an initially elongated heterogeneity surrounded by a miscible and compositionally diverse magma will tend to minimize its contact surface by relaxing to a spherical shape, adverted by a Korteweg stress driven flow. If the initial aspect ratio of the heterogeneity exceeds a critical value, surface minimization may be achieved by drop breakup. In addition, it is shown that two neighboring heterogeneities may coalesce to a single spherical drop. These results imply that even for fully miscible magmas. Theological barriers may prevent efficient mechanical intermingling and induce the formation of small-scale globular textures, analogous to those commonly observed in immiscible liquids. A better understanding of the role of Korteweg stress may be of the utmost importance for deciphering the textures generated by the interaction of compositionally diverse magmas.
机译:火成岩中微米至毫米大小的球状异质性的发生通常由液体不混溶过程解释。但是,这种纹理也已经以可混溶的岩浆对的形式记录在案。在这项研究中,对岩浆成分的整个频谱,测试了可混溶岩浆产生瞬时表面张力和模拟不溶混液体行为的能力。为了研究这种应力在扩散界面演化中的作用,我们实施了一个包含梯度应力(即Korteweg应力)影响的数值模型。结果表明,由可混溶且组成多样的岩浆围绕的初始拉长的异质性将趋向于通过松弛成球形而使其接触面最小化,这是由Korteweg应力驱动的流动所促成的。如果异质性的初始纵横比超过临界值,则可以通过液滴破裂来实现表面最小化。另外,显示了两个相邻的异质性可以聚结为单个球形液滴。这些结果表明,即使对于完全混溶的岩浆也是如此。与在不混溶液体中通常观察到的相似,神学障碍可能会阻止有效的机械混合并诱导形成小规模的球状纹理。更好地了解Korteweg应力的作用对于破译由成分多样的岩浆相互作用产生的纹理可能至关重要。

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