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Engineering size-scaling of plastic deformation in nanoscale asperities

机译:纳米粗糙度中塑性变形的工程尺寸尺度

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摘要

Size-dependent plastic flow behavior is manifested in nanoindentation, microbending, and pillar-compression experiments and plays a key role in the contact mechanics and friction of rough surfaces. Recent experiments using a hard flat plate to compress single-crystal Au nano-pyramids and others using a Berkovich indenter to indent flat thin films show size scaling into the 100-nm range where existing mechanistic models are not expected to apply. To bridge the gap between single-dislocation nucleation at the 1-nm scale and dislocation-ensemble plasticity at the 1-μm scale, we use large-scale molecular dynamics (MD) simulations to predict the magnitude and scaling of hardness H versus contact size ℓc in nano-pyramids. Two major results emerge: a regime of near-power-law size scaling H ≈ ℓc−η exists, with ηMD ≈ 0.32 compared with ηexpt ≈ 0.75, and unprecedented quantitative and qualitative agreement between MD and experiments is achieved, with HMD ≈ 4 GPa at ℓc = 36 nm and Hexpt ≈ 2.5 GPa at ℓc = 100 nm. An analytic model, incorporating the energy costs of forming the geometrically necessary dislocation structures that accommodate the deformation, is developed and captures the unique magnitude and size scaling of the hardness at larger MD sizes and up to experimental scales while rationalizing the transition in scaling between MD and experimental scales. The model suggests that dislocation–dislocation interactions dominate at larger scales, whereas the behavior at the smallest MD scales is controlled by nucleation over energy barriers. These results provide a basic framework for understanding and predicting size-dependent plasticity in nanoscale asperities under contact conditions in realistic engineered surfaces.
机译:尺寸相关的塑性流动行为表现在纳米压痕,微弯曲和支柱压缩实验中,并且在接触力学和粗糙表面的摩擦中起关键作用。最近使用硬平板压缩单晶金纳米金字塔的实验,以及使用Berkovich压头压扁平坦薄膜的其他实验表明,尺寸缩放到100-nm范围内,而现有的机械模型将不适用。为了弥合1-nm级别的单位错成核与1-μm级别的位错-整体可塑性之间的差距,我们使用大规模分子动力学(MD)模拟来预测硬度H的大小和比例与接触尺寸的关系ℓc在纳米金字塔中。出现两个主要结果:存在一种近似幂律尺度缩放的机制H≈ℓc,与ηexpt≈0.75相比,ηMD≈0.32,而MD和实验之间的定量和定性一致性是前所未有的在ℓc= 36 nm时,HMD≈4 GPa,在ℓc= 100 nm时,Hexpt≈2.5 GPa。开发了一种分析模型,该模型综合了形成适应变形的几何必要位错结构所需的能源成本,并在较大的MD尺寸和实验尺寸下捕获了硬度的独特大小和尺寸标度,同时合理化了MD之间的标度转换和实验规模。该模型表明,位错-位错相互作用在较大尺度上占主导地位,而在最小MD尺度上的行为则受能垒上的成核作用控制。这些结果提供了一个基本的框架,用于了解和预测在实际工程表面中的接触条件下纳米级粗糙中尺寸相关的可塑性。

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