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The effect of tip momentum on the contact stiffness and yielding during nanoindentation testing

机译:纳米压痕测试过程中,尖端动量对接触刚度和屈服的影响

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Thin films and variations in surface chemistry can cause large changes in the mechanical hardness and tribological properties of a surface. We present nanoindentation results which indicate that many of these variations are related to the mechanical deformaiton of atomic-size surface asperities. Our results show that the initial contact stiffness and the yield point load depends on the impact velocity of the indenter tip. This dependence was seen during nanoindentation testing of GaAs and tungsten in air, but the dependence was found to disappear when tungsten was tested in dilute HCl, thus suggesting that the velocity dependence is a strong function of surface chemistry in metallic systems. These results can be explained if the initiation of plastic yielding depends on the deformation of atomic-size surface asperities and ledges. Small changes in the mechanical properties of these surface features (elastic modulus and Burgers vector), and variations in the surface forces acting between the contacting bodies, will affect the generation of defects at the surface. For surface asperities with high mechanical strength the action of surface forces alone may not be sufficient to initiate yielding at the surface. However, a small increase in the impact velocity may partially deform the very smallest asperities, so permitting the action of surface forces to initiate plastic deformation on contact.
机译:薄膜和表面化学性质的变化会导致表面的机械硬度和摩擦学性能发生较大变化。我们提供的纳米压痕结果表明,这些变化中的许多与原子尺寸表面粗糙的机械变形有关。我们的结果表明,初始接触刚度和屈服点载荷取决于压头尖端的撞击速度。在空气中的GaAs和钨的纳米压痕测试中可以看到这种依赖性,但是当在稀HCl中测试钨时,这种依赖性消失了,因此表明速度依赖性是金属系统中表面化学的强大功能。如果塑性屈服的起始取决于原子尺寸的表面凹凸和壁架的变形,则可以解释这些结果。这些表面特征的机械性能(弹性模量和Burgers矢量)的细微变化,以及在接触体之间作用的表面力的变化,都会影响表面缺陷的产生。对于具有高机械强度的表面粗糙物,仅表面力的作用可能不足以引发表面屈服。但是,冲击速度的小幅增加可能会使最小的凹凸部分变形,因此允许表面力的作用在接触时引发塑性变形。

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