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Role of plastic deformation on the efficiency of a nitriding treatment: modelling of the hardness-depth profile

机译:塑性变形对氮化处理效率的作用:硬度-深度分布模型

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To increase the hardness of ion-nitrided stainless steels, a plastic deformation is performed previously to the nitriding treatment in order to generate dislocations used afterwards as diffusion paths for atoms. In this work, influence of different plastic strain rates on the surface hardness improvement is studied. To obtain hardness values very close to the outer surface is not possible by classical hardness-depth profile, a simple model based on indentations performed perpendicularly to the surface is proposed. The predicted hardness-depth profile in different situations of work-hardening clearly demonstrates the efficiency of the prior plastic deformation on the global hardness improvement of the nitrided stainless steel. As a result, the hardened layer thickness increases from 20 urn to 35 urn when the plastic deformation rate increases from 0% to 80% of the maximum one. This is directly linked to the augmentation of the dislocation density by the work-hardening process.
机译:为了增加离子氮化不锈钢的硬度,在氮化处理之前先进行塑性变形,以产生随后用作原子扩散路径的位错。在这项工作中,研究了不同塑性应变速率对表面硬度提高的影响。为了通过经典的硬度-深度轮廓无法获得非常接近外表面的硬度值,提出了一种基于垂直于表面的压痕的简单模型。在不同的加工硬化条件下预测的硬度-深度轮廓清楚地证明了先有塑性变形对氮化不锈钢整体硬度提高的效率。结果,当塑性变形率从最大厚度的0%增加到80%时,硬化层的厚度从20μm增加到35μm。这直接与通过加工硬化过程增加位错密度有关。

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