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Multi-Scale Analysis of Failure during Superplastic Deformation

机译:超塑性变形期间的多尺度分析

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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)期间的故障可能是几何宏观稳定性和/或微观结构方面产生的。但是,可用的故障标准基于几何不稳定性或微结构特征,并且不考虑两个故障模式。在这项工作中,通过将改进的基于微结构的组成方程与晶粒和空化演化方程组合来开发新的多尺度稳定性标准。新标准用于为TI-6AL-4V-4V合金设计最佳可变应变率形成路径。还检查了空隙级分,粒度和应变率灵敏度对最佳形成路径的影响。此外,使用最佳成形路径进行半球的超塑性吹吹的Fe分析,并将结果与​​使用恒定应变率形成路径获得的结果进行比较。结果表明,所提出的多尺度标准可以降低成形时间而不会导致局部变形和变薄。

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