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A new front-tracking method to model anisotropic grain and phase boundary motion in rocks

机译:岩石中各向异性晶粒和相边界运动建模的一种新的前跟踪方法

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Microstructures of rocks play an important role in determining rheological properties and help to reveal the processes that lead to their formation. Some of these processes change the microstructure significantly and may thus have the opposite effect in obliterating any fabrics indicative of the previous history of the rocks. One of these processes is grain boundary migration (GBM). During static recrystallisation, GBM may produce a foam texture that completely overprints a pre-existing grain boundary network and GBM actively influences the rheology of a rock, via its influence on grain size and lattice defect concentration. In this paper we present a new front-tracking method to simulate GBM. Generally, any movement of boundaries is driven by the minimisation of the internal free energy of a system. The new method moves boundaries along the energy gradient towards a lower total energy state of the system. The calculation of the energy gradient is not necessarily limited to (an)isotropic boundary energies but may also include metamorphism, melting, reaction energies, surface energies and elastic stresses, etc. Two examples are included in this paper where we simulate grain growth with isotropic boundary energy functions and grain growth with isotropic and anisotropic boundary energy functions in a system with a melt present.
机译:岩石的微观结构在确定流变性质中起着重要作用,并有助于揭示导致其形成的过程。这些过程中的某些过程会显着改变微观结构,因此可能在消除表示岩石先前历史的任何织物方面具有相反的作用。这些过程之一是晶界迁移(GBM)。在静态重结晶过程中,GBM可能会产生泡沫纹理,该泡沫纹理会完全覆盖先前存在的晶界网络,而GBM会通过其对晶粒尺寸和晶格缺陷浓度的影响来积极影响岩石的流变性。在本文中,我们提出了一种新的前跟踪方法来模拟GBM。通常,边界的任何运动都是由系统内部自由能的最小化驱动的。新方法将边界沿能量梯度移向系统较低的总能量状态。能量梯度的计算并不仅限于(各向同性)边界能,还可以包括变质,熔化,反应能,表面能和弹性应力等。本文包括两个示例,我们用各向同性模拟晶粒生长有熔体的系统中,边界能函数和晶粒生长具有各向同性和各向异性边界能函数。

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