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首页> 外文期刊>Computational Materials Science >Theoretical modelling of ductile damage in duplex stainless steels - Comparison between two micro-mechanical elasto-plastic approaches
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Theoretical modelling of ductile damage in duplex stainless steels - Comparison between two micro-mechanical elasto-plastic approaches

机译:双相不锈钢延性损伤的理论模型-两种微机械弹塑性方法的比较

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摘要

Ductile damage is a consequence of large strains more or less localized inside bands. Taking into account damage in constitutive behaviour of metallic materials is necessary to model various engineering problems involved in forming processes (stamping, punching, shearing...). Damage can be described at macroscopic level with continuum mechanics theories but introducing microstructural features can lead to more accurate predictions. In the present study, two polycrystalline plasticity models including damage effects in the framework of scale transition methods are investigated. These models are based on different approaches with direct application to duplex stainless steel. The first one is a variant of the Lipinski-Berveiller model in which ductile damage effects have been introduced. The second one is a generalized Cailletaud model taking into account ductile damage. Because of the microstructural complexity of the chosen materials, some particular developments of the micro-mechanical approaches are considered. Moreover, continuous damage mechanics is used at grains scale including its coupling with plastic or elastic-plastic flow. The modelling is justified from previous experimental results obtained by neutrons diffraction on duplex stainless steels. The developed models allow then deducing from the grains behaviour the macroscopic behaviour of the aggregate with damage effects.
机译:延性破坏是由于大应变或多或少地局限在带内的结果。考虑到金属材料的本构行为中的损坏,对建模过程中涉及的各种工程问题(冲压,冲压,剪切等)进行建模是必要的。可以用连续力学理论在宏观层面上描述损伤,但是引入微观结构特征可以导致更准确的预测。在本研究中,研究了两种多晶可塑性模型,包括在尺度转换方法框架内的损伤效应。这些模型基于直接应用于双相不锈钢的不同方法。第一个是Lipinski-Berveiller模型的变体,其中引入了延性破坏效应。第二个是考虑延性损伤的广义Cailletaud模型。由于所选材料的微观结构复杂性,考虑了微机械方法的某些特殊发展。此外,在晶粒度上使用连续损伤机制,包括其与塑性或弹塑性流动的耦合。该模型是根据先前在双相不锈钢上通过中子衍射获得的实验结果证明的。所开发的模型可以从晶粒行为中推断出具有破坏效应的骨料的宏观行为。

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