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Determination of elastic moduli of elastic–plastic microspherical materials using nanoindentation simulation without mechanical polishing

机译:利用纳米升压模拟测定弹性塑料微球体材料的弹性模量无机械抛光

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摘要

When using the Oliver–Pharr method, the indented specimen is assumed to be a perfectly flat surface, thus ignoring the influences of surface roughness that might be encountered in experiment. For nanoindentation measurements, a flat surface is fabricated from curved specimens by mechanical polishing. However, the position of the polished curved surface cannot be controlled. There are no reliable theoretical or experimental methods to evaluate the mechanical behavior during nanoindentation of an elastic–plastic microsphere. Therefore, it is necessary to conduct reliable numerical simulations to evaluate this behavior. This article reports a systematic computational study regarding the instrumented nanoindentation of elastic–plastic microspherical materials. The ratio between elastic modulus of the microsphere and the initial yield stress of the microsphere was systematically varied from 10 to 1000 to cover the mechanical properties of most materials encountered in engineering. The simulated results indicate that contact height is unsuitable to replace contact depth for obtaining the indentation elastic modulus of microspherical materials. The extracted elastic modulus of a microsphere using the Oliver–Pharr method with the simulated unloading curve depends on the indentation depth. It demonstrates that nanoindentation on microspherical materials exhibits a “size effect”.
机译:当使用Oliver-Pharr方法时,假设缩进样品是完全平坦的表面,因此忽略了在实验中可能遇到的表面粗糙度的影响。对于纳米狭窄测量,通过机械抛光从弯曲的标本制造平坦表面。然而,不能控制抛光弯曲表面的位置。没有可靠的理论或实验方法来评估弹性塑料微球的纳米内的机械性能。因此,有必要进行可靠的数值模拟以评估这种行为。本文报告了有关弹性塑料微球材料的仪表纳米indentation的系统计算研究。微球的弹性模量与微球的初始屈服应力之间的比率从10到1000系统地变化,以覆盖工程中遇到的大多数材料的机械性能。模拟结果表明,接触高度不合适地替换接触深度以获得微球材料的凹口弹性模量。使用具有模拟卸载曲线的oliver-pharr方法的微球的提取的弹性模量取决于压痕深度。它表明,微球体材料的纳米内膜显示出“尺寸效应”。

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