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Modeling of the plastic deformation of nanostructured materials with grain size gradient

机译:晶粒度梯度对纳米结构材料塑性变形的建模

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摘要

Many studies have shown that the outstanding mechanical properties of surface nano-crystallized(SNC)materials were primarily attributed to the grain size gradient(GSG)region on their surface in which the grain size was ranging from tens of nanometers to tens of micrometers. In the present study, a dislocation density-based theoretical model was developed to investigate the mechanical behavior of the mentioned SNC materials. The constitutive behaviors of metallic materials with grain size ranging from tens of nanometers to tens of micrometers were established first. Note that an additional dislocation dynamic recovery term, which is grain size dependent, was included in the present model to account for the decrease of work hardening due to grain refinement. In addition, the stress-driven strain growth observed in experiments has also been incorporated into the proposed model. The proposed quantitative continuum plasticity model was capable of investigating the role of GSG in tuning the strength, ductility and work hardening rate of SNC materials. Our theoretical predictions were in good agreement with the existing experimental results. Furthermore, it has been found that the thickness fraction of the GSG layer and grain growth have significant influences on the strength and ductility of SNC materials. Therefore, the proposed model can be employed to optimize the mechanical behavior in SNC materials by controlling the thickness fraction and grain size in the GSG region and grain growth.
机译:许多研究表明,表面纳米结晶(SNC)材料的出色机械性能主要归因于其表面上的晶粒尺寸梯度(GSG)区域,其中晶粒尺寸范围从几十纳米到数十微米。在本研究中,建立了基于位错密度的理论模型,以研究上述SNC材料的力学行为。首先建立了晶粒大小从几十纳米到几十微米的金属材料的本构行为。注意,在本模型中还包括一个与晶粒尺寸有关的位错动态恢复术语,以说明由于晶粒细化而导致的加工硬化的减少。此外,在实验中观察到的应力驱动应变的增长也已被纳入所提出的模型中。提出的定量连续可塑性模型能够研究GSG在调节SNC材料的强度,延展性和加工硬化率方面的作用。我们的理论预测与现有的实验结果非常吻合。此外,已经发现,GSG层的厚度分数和晶粒生长对SNC材料的强度和延展性具有显着影响。因此,通过控制GSG区域的厚度分数和晶粒尺寸以及晶粒长大,可以将所提出的模型用于优化SNC材料的力学性能。

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