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Hertzian analysis of the self-consistency and reliability of the indentation hardness measurements on superhard nanocomposite coatings

机译:超硬纳米复合涂层压痕硬度测量的自洽性和可靠性的赫兹分析

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The measurement of elastic properties of superhard nanocomposite coatings can be subject to a number of possible errors, such as indentation size effects (indenter tip blunting, non-representative small volume of the material to be tested upon nanoindentation and a too small stress under the indenter which does not reach the yield stress of that material if a too low load is used), the composite effect of the system of superhard coating on a softer substrate, high compressive or tensile stress in the coatings, drifts and/or stiffness of the indenter etc. We shall present a systematic study of these possible artefacts on superhard coatings using a large range of applied loads on a number of super- and ultrahard samples. The hardness values obtained from the indentation measurements are compared with the Vickers hardness calculated from the projected area of the plastic deformation. The data will be also compared with finite element method computer modeling in order to obtain a deeper insight into the complex problems. It will be shown that reliable results can be obtained if sufficiently thick coatings are used which allows one to obtain load independent values of hardness measured at sufficiently large indentation depths. Hertzian analysis of the non-linear elastic response upon unloading provides analytical solutions that can be used in order to check if the hardness values measured on the super- and ultrahard coatings are self-consistent. In particular, it is possible to estimate the maximum tensile stress that the coatings survive without failure. This stress occurs at the periphery of the contact between the coating and the indenter and, in the case of ultrahard coatings, it can reach values in the range of tens of GPa. The results show a very good agreement with the theoretical predictions based on the Universal Binding Energy Relation.
机译:超硬纳米复合材料涂层弹性性能的测量可能会受到许多可能的误差的影响,例如压痕尺寸效应(压头尖端钝化,纳米压痕时待测材料的代表性体积很小以及压头下的应力太小)如果使用太低的载荷则不能达到该材料的屈服应力),超硬涂层系统在较软基材上的复合效果,涂层中的高压缩或拉伸应力,压头的漂移和/或刚度我们将对在许多超硬和超硬样品上施加的大范围载荷施加对超硬涂层上这些可能的伪像的系统研究。将通过压痕测量获得的硬度值与根据塑性变形投影面积计算出的维氏硬度进行比较。还将数据与有限元方法计算机建模进行比较,以便更深入地了解复杂问题。将显示出,如果使用足够厚的涂层,则可以获得可靠的结果,该涂层允许人们获得在足够大的压痕深度下测得的硬度的与载荷无关的值。卸荷时的非线性弹性响应的赫兹分析提供了可用于检查超硬和超硬涂层上测得的硬度值是否自洽的分析解决方案。特别地,可以估计涂层存活而不会失效的最大拉伸应力。该应力发生在涂层和压头之间的接触边缘,在超硬涂层的情况下,应力可能达到数十GPa的范围。结果显示与基于万能结合能关系的理论预测非常吻合。

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