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Conception of New Phase Dislocation-Based Nucleation at Reconstructive Martensitic Transformations

机译:重构马氏体相变中基于新位错的成核概念

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摘要

The role of dislocations and the dynamical mechanism controlling the structural reconstruction in the process of nucleation and wave growth of new phase unit crystals at martensitic transformations in metallic systems are discussed. It has been established that near some rectilinear dislocations with lines and Burgers's vectors typical for the original phase, there are areas where an elastically deformed state is characterized by package of particularities unambiguously corresponding to the well definite morphological attribute set (habit, orientation relationship, macroshear) of the martensite crystal. The distinctiveness of these areas for martensite nucleation is caused by character of strains reducing the magnitude of interphase energetic barrier. The elastic model of the dislocation-based nucleation center of martensitic crystal, allowing to select the dislocations being the most probable for nucleation and to make a martensitic crystal with the morphological attribute specific collection corresponding to each a dislocation, has been proposed. Such dislocations for certain Fe-, Cu- and TiNi-based alloys are indicated. New results for titanium nickel are presented in more detail.
机译:讨论了在金属体系中马氏体相变过程中,新相单位晶体的成核和波生长过程中,位错的作用和控制结构重建的动力学机制。已经确定的是,在某些直线错位和原始阶段特有的Burgers向量附近,存在一些区域,其中弹性变形状态的特征是明确地对应于明确定义的形态属性集(习性,取向关系,宏观剪切)的特征包。 )的马氏体晶体。马氏体形核的这些区域的独特性是由降低相间高能势垒大小的应变特性引起的。提出了一种基于位错的马氏体晶体成核中心的弹性模型,该模型允许选择最可能成核的位错,并使马氏体晶体具有与每个位错相对应的形态学特征特异性集合。指出了某些基于Fe,Cu和TiNi的合金的位错。钛镍的新结果将更详细地介绍。

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