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Achieving superplasticity through severe plastic deformation

机译:通过严重的塑性变形实现超塑性

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摘要

The processing of metals through the application of severe plastic deformation (SPD) provides an opportunity for refining the grains to the submicrometer or even the nanometer range in bulk materials. In principle, these ultrafine-grained materials should be ideal for achieving excellent superplastic properties but in practice this requires also that the microstructure has reasonable stability when testing in tension at elevated temperatures. Attaining superplastic elongations is an important prerequisite for using metals in commercial superplastic forming applications. Accordingly, this review briefly summarizes the principles of grain refinement in f.c.c. and h.c.p. metals where the mechanisms of grain refinement are different in these different crystal structures. The exceptional grain refinement produced by SPD techniques leads to excellent superplastic properties in many different materials. Especially, controlling the processing parameters of SPD techniques and using two-phase alloys are useful strategies for achieving excellent superplastic properties in metallic materials. This report presents numbers of examples of superplastic flow in several different metals and alloys processed by two representative SPD processing techniques of equal-channel angular pressing (ECAP) and high-pressure torsion (HPT). Finally, it is now possible to evaluate the flow process in superplasticity and this provides an opportunity to present the experimental data in terms of a deformation mechanism map.
机译:通过施加严重的塑性变形(SPD)对金属进行处理,为将散装材料中的晶粒细化到亚微米甚至纳米范围提供了机会。原则上,这些超细颗粒材料对于实现优异的超塑性应是理想的,但是在实践中,这还要求在高温下进行拉伸试验时,微结构具有合理的稳定性。获得超塑性伸长率是在商业超塑性成形应用中使用金属的重要前提。因此,这篇综述简要地总结了f.c.c.中晶粒细化的原理。和h.c.p.在这些不同的晶体结构中,晶粒细化机理不同的金属。通过SPD技术生产的出色晶粒细化可在许多不同的材料中带来出色的超塑性。特别是,控制SPD技术的加工参数并使用两相合金是在金属材料中实现优异超塑性的有用策略。本报告介绍了通过等通道角挤压(ECAP)和高压扭转(HPT)两种代表性SPD加工技术加工的几种不同金属和合金中超塑性流动的例子。最后,现在可以评估超塑性下的流动过程,这为根据变形机理图展示实验数据提供了机会。

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