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Indentation Size Effect in Pressure-Sensitive Polymer Based on A Criterion for Description of Yield Differential Effects and Shear Transformation-Mediated Plasticity

机译:基于描述屈服差异效应和剪切转换介导可塑性的判据的压敏聚合物压痕尺寸效应

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摘要

Indentation size effects in poly(methyl methacrylate) (PMMA) were studied through nanoindentation. Two factors of indentation size effects in PMMA, namely yield criterion and shear transformation-mediated plasticity, were analysed in detail. The yield criterion that considers strength differential (SD) effects and pressure sensitivity was constructed by performing the combined shear-compression experiments. The relationship between hardness and normal stress can then be obtained based on Tabot’s relation. Shear transformation-mediated plasticity was also applied to model the measured hardness as a function of the indentation depth at different strain rates. Results show that the yield criterion contains the terms of SD effects and pressure sensitivity gives the best description of the yielding of PMMA. Additionally, the volume of single shear transformation zone calculated through the presented criterion agrees well with simulation and exhibits increases with increasing strain rate. Indentation size effects in PMMA under different strain rates were discussed and an appropriate indentation depth range was suggested for calculating the hardness and modulus.
机译:通过纳米压痕研究了聚甲基丙烯酸甲酯(PMMA)中压痕尺寸的影响。详细分析了PMMA中压痕尺寸影响的两个因素,即屈服准则和剪切转变介导的可塑性。通过执行组合的剪切压缩实验,构造了考虑强度差(SD)效应和压力敏感性的屈服准则。然后可以基于Tabot的关系获得硬度与法向应力之间的关系。剪切转变介导的可塑性也被用来对不同应变速率下测得的硬度作为压痕深度的函数进行建模。结果表明,屈服准则包含SD效应的术语,而压力敏感性则是对PMMA屈服的最好描述。此外,通过提出的标准计算的单剪切转变带的体积与模拟吻合得很好,并且随着应变率的增加而增加。讨论了在不同应变速率下PMMA中压痕尺寸的影响,并提出了合适的压痕深度范围来计算硬度和模量。

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