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NANO-SCALE INDENTATION MEASUREMENT OF MATERIAL PROPERTIES USING AN AREA FUNCTION OF THE TIP GEOMETRY

机译:使用尖端几何形状的面积函数测量材料的纳米尺度压痕

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A novel two-parameter area function for determination of near surface properties of Young's modulus of elasticity and hardness has shown promise for compensating for the imperfection of the tip-end in an instrumented indentation measurement. This paper provides a comprehensive study involving a Berkovitch tip. The tip is utilized in an MTS nanoindentation measurement machine and used to establish load indentation information for fused silica samples. The geometry of the tip is then characterized independently using a highly accurate Atomic Force Microscope. Using the indentation data along with the two-parameter area function methodology, the tip-end radius of curvature is found to provide the most consistent value of modulus of elasticity. Independently, the data from the SEM measurement of the same tip is used to obtain the least squares estimation of the tip curvature. The two approaches yield favorable agreement in the estimation of tip-end radius of curvature. Therefore, the validity of the two-parameter area function method is proved. The method is shown to provide a robust, reliable and accurate measurement of modulus of elasticity and hardness in the nanoscale proximity of a surface.
机译:用于确定杨氏弹性模量和硬度的近表面特性的新颖的两参数面积函数已显示出有望在仪器压痕测量中补偿尖端的缺陷的希望。本文提供了涉及Berkovitch技巧的综合研究。该尖端在MTS纳米压痕测量仪中使用,用于建立熔融石英样品的负载压痕信息。然后,使用高精度原子力显微镜对尖端的几何形状进行独立表征。使用压痕数据和两参数面积函数方法,可以发现尖端曲率半径提供了最一致的弹性模量值。独立地,来自相同尖端的SEM测量的数据用于获得尖端曲率的最小二乘估计。两种方法在估计末端曲率半径方面产生了良好的一致性。因此,证明了二参数面积函数法的有效性。示出该方法在表面的纳米级附近提供鲁棒,可靠和准确的弹性模量和硬度的测量。

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