概述。86

P.H. Leo , R.F. Sekerka
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引用次数: 151

摘要

采用变分法研究了表面应力对晶体-熔体、相干晶体-晶体和润滑晶体-晶体界面平衡条件的影响。在所有三种情况下,相之间的界面都被建模为吉本氏划分面,并且允许与界面相关的多余内能取决于界面的变形和界面的结晶法向。由于界面的变形和界面上两相之间的转换(吸积),界面的位置可能会发生变化,因此我们定义了一个特殊的变化来解释这两者。因此,表面应力明显地出现在晶体-熔体和相干晶体-晶体界面的力和能量平衡中。特别是,在这些界面的能量平衡中出现了一个界面应变能项;这一项给出了与表面应力相关的力使界面变形的能量,是该分析的一个新结果。各向异性也通过一个可以用Cahn和Hoffman的ξ向量表示的项出现在能量平衡中。最后,表明了润滑脂晶体-晶体系统不同于晶体-熔体和相干晶体-晶体系统,在润滑脂界面上可以定义两个独立的变形和晶体法向。然而,通过在这些变形和法向之间分配与润滑脂界面相关的多余能量,可以将润滑脂界面的平衡条件降低到两个晶体仅通过界面上的薄流体层相互作用时的平衡条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Overview no. 86

The effect of surface stress on the equilibrium conditions at crystal-melt, coherent crystal-crystal and greased crystal-crystal interfaces is investigated by using a variational method to test for equilibrium. In all three cases, the interface between the phases is modelled as a Gibbsian dividing surface, and the excess internal energy associated with the interface is allowed to depend on both the deformation of the interface and the crystallographic normal to the interface. The position of an interface can vary due to both deformation at the interface and transformation between the two phases at the interface (accretion), and so we define a special variation that accounts for both. Thus, surface stress appears explicitly in both the force and energy balances at crystal-melt and coherent crystal-crystal interfaces. In particular, an interfacial strain energy term appears in the energy balance at these interfaces; this term gives the energy of deforming the interface against the force associated with the surface stress, and is a new result from this analysis. Anisotropy also appears in this energy balance through a term that can be expressed by using Cahn and Hoffman's ξ-vector. Finally, it is shown that a greased crystal-crystal system differs from crystal-melt and coherent crystal-crystal systems in that two independent deformations and crystallographic normals can be defined at a greased interface. However, by partitioning the excess energy associated with a greased interface between these deformations and normals, one can reduce the equilibrium conditions at a greased interface to those that obtain if the two crystals would interact only through a thin fluid layer at the interface.

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