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Textures and Anisotropy of Titanium Alloys

机译:钛合金的织构和各向异性

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The present paper deals with the texture, deformation mechanisms and mechanical properties of a and near a alloys (i.e. with hexagonal symmetry matrix). For items related aspects are reviewed :rn1) texture formation during thermomechanical treatments depending on the composition of the alloysrn2) determination of active deformation mechanismsrn3) mechanical properties depending on the texture and deformation mechanismsrn4) modelling and prediction of mechanical propertiesrnFor all the alloys, the texture evolution during the whole process must be considered especially during the hot rolling taking into account phase transformations. In the same way, the texture evolutions observed during cold rolling will be explained in terms of the evolution of the microstructures and deformation mechanisms. Finally, a classification of the sheet textures is made as a function of the composition of the alloys.rnIn titanium a or near a alloys, the deformation can be accommodated by both glide and twinning. The selection of the different mechanisms activated during plastic deformation depends of the alloying elements, the grain size, grain orientations and the condition of the test (T,e ,e). We present a method to determine different types of glide (prismatic, basal, pyramidal slips) and twinning systems activated as well as their relative critical shear stress ratios.rnThe initial textures of the sheets are generally sharp after thermomechanical treatments and many properties such as yield stress are anisotropic. In addition, yield stress and ductility can be directly correlated with the deformation mechanisms activated in the sample to accommodate the deformation.rnThe present work demonstrates the qualitative correlations between textures, deformation mechanisms and mechanical properties for all the alloys studied.rnUsing different approaches (Taylor or Self - Consistent models), it is possible to model the texture evolution during the deformation taking into account the initial texture and the deformation mechanisms actived, and also to predict the mechanical properties of the studied alloys. Predicted and experimental curves are compared and a discussion of the most important parameters emphasises the great importance of the behavior parameters (i.e. the deformation mechanisms) for successful modelling.rnInsufficient knowledge of the critical resolved shear stresses remains the main obstacle and explains why some results may be questionable. In conclusion the review identifies the next steps which are necessary in order to make progress when establishing relationships between textures -microstructures - mechanical properties.
机译:本论文涉及合金及其附近合金(即具有六边形对称矩阵)的织构,变形机理和力学性能。对于相关方面的项目进行了审查:rn1)根据合金成分在热机械处理过程中的织构形成rn2)确定主动变形机制rn3)取决于织构和变形机制的机械性能rn4)力学性能的建模和预测rn对于所有合金,织构在整个过程中,尤其是在热轧过程中,必须考虑相变,才考虑其演变。同样,将根据微观组织和变形机理的演变来解释冷轧过程中观察到的织构演变。最后,根据合金的成分对板材的织构进行分类。在钛a或合金附近,滑行和孪生都可以适应变形。在塑性变形过程中激活的不同机制的选择取决于合金元素,晶粒尺寸,晶粒取向和测试条件(T,e,e)。我们提供一种确定不同类型的滑行(棱柱滑移,基滑移,金字塔滑移)和孪生系统及其相对临界剪切应力比的方法.rn在经过热机械处理后,片材的初始质地通常很锋利,并且具有很多特性(例如屈服)应力是各向异性的。此外,屈服应力和延展性可以直接与样品中激活的变形机制相关联以适应变形。rn本工作证明了所研究的所有合金的织构,变形机制和力学性能之间的定性相关。rn使用不同的方法(泰勒或自洽模型),可以在考虑初始织构和激活的变形机制的情况下对变形过程中的织构演化进行建模,并预测所研究合金的力学性能。比较了预测曲线和实验曲线,对最重要参数的讨论强调了行为参数(即变形机制)对于成功建模的重要性。rn对临界解析剪应力的了解不足仍然是主要障碍,并解释了为什么有些结果可能值得怀疑。总而言之,本综述确定了在建立纹理-微结构-力学性能之间的关系时取得进步所必需的下一步。

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