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Multi-Scale Analysis of Failure during Superplastic Deformation

机译:超塑性变形破坏的多尺度分析

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摘要

Failure during Superplastic deformation (SPD) may result from geometrical macroscopic instabilities and/or microstructural aspects. However, the available failure criteria are based either on geometrical instabilities or microstructural features and do not account for both failure modes. In this work, a new multiscale stability criterion is developed by combining a modified microstructure-based constitutive equation with grain and cavitation evolution equations. The new criterion is used to design optimum variable strain rate forming paths for Ti-6Al-4V SP alloy. The effects of void fraction, grain size and strain rate sensitivity on the optimum forming paths are also examined. In addition, FE analysis of Superplastic blow forming of a hemisphere is carried out using the optimum forming path and the results are compared with those obtained using constant strain rate forming paths. It is shown that the proposed multi-scale criterion can reduce the forming time without causing localized deformation and thinning.
机译:超塑性变形(SPD)期间的破坏可能是由几何宏观不稳定性和/或微观结构方面引起的。但是,可用的失效准则是基于几何不稳定性或微观结构特征的,并不考虑这两种失效模式。在这项工作中,通过将基于微观结构的修正本构方程与晶粒和空化演化方程相结合,开发了新的多尺度稳定性判据。新标准用于设计Ti-6Al-4V SP合金的最佳可变应变速率形成路径。还检查了空隙率,晶粒尺寸和应变速率敏感性对最佳成形路径的影响。另外,使用最佳成形路径进行了半球超塑性吹塑的有限元分析,并将结果与​​使用恒定应变率成形路径获得的结果进行了比较。结果表明,提出的多尺度判据可以减少成形时间,而不会引起局部变形和变薄。

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