首页> 外文期刊>Surface & Coatings Technology >Non-linear finite element constitutive modeling of indentation into super- and ultrahard materials: The plastic deformation of the diamond tip and the ratio of hardness to tensile yield strength of super- and ultrahard nanocomposites
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Non-linear finite element constitutive modeling of indentation into super- and ultrahard materials: The plastic deformation of the diamond tip and the ratio of hardness to tensile yield strength of super- and ultrahard nanocomposites

机译:压入超硬和超硬材料的非线性有限元本构模型:金刚石尖端的塑性变形以及超硬和超硬纳米复合材料的硬度与拉伸屈服强度之比

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Using a non-linear constitutive material model for super- (H >= 40 GPa) and ultrahard (H >= 80 GPa) materials that accounts for the pressure enhancement of elastic moduli and of plastic resistance, we present the effect of plastic deformation and resultant blunting of the diamond indenter, and discuss the limitations to the measurement on ultrahard materials by means of nano-indentation. We further show that the ratio of the hardness H to plastic resistance Y in tension amounts to about 2.4 for the super- and 2.84 for ultrahard nanocomposites, although the ratio of hardness to Young's modulus is relatively high. These results are briefly discussed in terms of the expanding cavity model and the elastic-plastic transition.
机译:使用用于超级(H> = 40 GPa)和超硬(H> = 80 GPa)材料的非线性本构材料模型,该模型考虑了弹性模量和塑性阻力的压力增强,我们给出了塑性变形和金刚石压头的钝化,并讨论了通过纳米压痕法对超硬材料进行测量的局限性。我们进一步表明,尽管硬度与杨氏模量的比率相对较高,但超硬纳米复合材料的抗拉强度H与可塑性Y的比值约为2.4,超硬纳米复合材料约为2.84。根据膨胀腔模型和弹塑性转变简要讨论了这些结果。

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