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Effect of Poisson's ratio on material property characterization by nanoindentation with a cylindrical flat-tip indenter

机译:圆柱形压模泊头纳米压痕物质特性对材料特性的影响

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Nanoindentation is commonly used to determine the mechanical properties of the engineering materials. Young's modulus of a bulk material can be extracted from the load-depth data obtained from an indentation test with a prescribed Poisson's ratio that is unknown for a new material. The effect of Poisson's ratio on material's mechanical property characterization remains unknown. In this paper, finite element analysis was used to simulate nanoindentation testing on specimens of low-carbon steel AISI1018, steel alloy AISI4340, and aluminum alloy 6061T6 with a cylindrical flat-tip indenter. The effects of Poisson's ratio on measurements of indentation load versus depth curves, Young's modulus, hardness, and pile-up of the specimens were investigated and formulated. The Poisson ratio ranging from 0 to 0.49 was considered. It was found that the linear part at the beginning of the indentation loading process from the load versus depth curve was proportional to the Young's modulus and significantly affected by the Poisson's ratio. The indentation pile-up was also sensitive to the Poisson's ratio. Combining the formulas from this work with the Hertzian contact equation, the Young's modulus and the Poisson's ratio can be determined simultaneously.
机译:纳米indentation通常用于确定工程材料的机械性能。散装材料的杨氏模量可以从从压痕测试获得的负载深度数据中提取,并具有规定的泊松比对于新材料未知。泊松比对材料力学性质表征的影响仍然未知。本文采用有限元分析来模拟低碳钢AISI1018,钢合金AISI4340和铝合金6061T6试样的纳米茚调试验,具有圆柱平尖压痕。研究了泊松比对压痕载荷与深度曲线,杨氏模量,硬度和堆积的测量的影响,并配制。考虑了0至0.49的泊松比。结果发现,从负荷与深度曲线开始的压痕加载过程开始的线性部分与杨氏模量成比例,并受到泊松比的显着影响。压痕堆积对泊松比也很敏感。将公式与赫兹触点方程相结合,可以同时确定杨氏模量和泊松比。

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