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Indentation versus uniaxial power-law creep: a numerical assessment

机译:压痕与单轴幂律蠕变:数值评估

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摘要

This study concerns the employment of instrumented indentation to characterize the power-law creep response of metallic materials. Systematic numerical finite element analyses of conical indentation, under controlled constant indentation strain rates, were conducted. The model system is pure tin (Sn) and Sn-based alloy with known uniaxial power-law creep parameters, with their stress exponents ranging from 7 to 10. It was found that the constant indentation strain rate results in a steady-state hardness which is independent of indentation depth. The indentation-derived stress exponents are almost identical to those of uniaxial creep, leading to parallel lines of strain rate versus creep stress on the logarithmic scale. A remarkably consistent ratio of uniaxial strain rate and indentation strain rate, 0.33, was obtained for all the model materials considered.
机译:这项研究涉及使用仪器压痕来表征金属材料的幂律蠕变响应。在恒定的恒定压痕应变速率下,对锥形压痕进行了系统的数值有限元分析。模型系统是具有已知单轴幂律蠕变参数的纯锡(Sn)和锡基合金,其应力指数范围为7到10。发现恒定的压痕应变速率会导致稳态硬度,与压痕深度无关。压痕派生的应力指数与单轴蠕变几乎相同,从而导致应变率与蠕变应力在对数尺度上平行。对于所有考虑的模型材料,单轴应变率和压痕应变率的比率均非常一致,为0.33。

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