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Experimental and computational issues for automated extraction of plasticity parameters from spherical indentation

机译:从球形压痕自动提取塑性参数的实验和计算问题

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摘要

Software packages are being developed for automated extraction of plasticity parameters from indentation data (primarily load-displacement plots, although residual indent dimension data are also likely to be useful). Their design must be closely integrated with the associated experimental measurements. The procedure involves iterative FE simulation of the penetration of a spherical indenter into a sample, with automated convergence on a best-fit set of parameter values characterizing the yielding and work hardening response of the material (in a constitutive law). This paper outlines the main issues involved in optimization of experimental conditions and model formulation. Illustrative experimental data are presented from extruded rods of 5 metallic materials. Experimental issues include the dimensional scales of the indenter radius, R, and the depth of penetration, 5, with delta/R (the "penetration ratio") being of particular significance. A brief study is presented of the potentially conflicting requirements of deforming a volume large enough to represent the response of the bulk and having a value of delta/R that creates plastic strains in a range that will adequately capture the work hardening response. A key conclusion of this study is that a "mid-range" indentation facility is likely to be optimal, with a load capability of at least a few kN, able to create delta/R values up to similar to 40%, with R similar to 0.5-2 mm. Other experimental issues include displacement measurement techniques, calibration of machine compliance and the possibility of material anisotropy (due to crystallographic texture). Issues related to formulation of the FE model include specification of the domain and mesh, selection of the constitutive plasticity law and simulation of interfacial friction. The convergence algorithm used is also described.
机译:正在开发用于从压痕数据(主要是载荷-位移图,尽管残余压痕尺寸数据也可能有用)中自动提取塑性参数的软件包。他们的设计必须与相关的实验测量紧密结合。该程序包括对球形压头穿透样品的迭代有限元模拟,并自动收敛到一组最适合的参数值,这些参数值表征了材料的屈服和加工硬化响应(根据本构定律)。本文概述了优化实验条件和模型制定所涉及的主要问题。说明性实验数据来自5种金属材料的挤压棒。实验问题包括压头半径的尺寸标度R和穿透深度5,其中delta / R(“穿透率”)特别重要。一份简短的研究报告提出了一个潜在的相互矛盾的要求,即变形一个体积足够大以表示块体响应并具有delta / R值的体积,该值会在一定范围内产生可充分捕获加工硬化响应的塑性应变。这项研究的主要结论是,“中程”压痕装置可能是最佳的,其负载能力至少为几千牛,能够产生高达40%的delta / R值,而R到0.5-2毫米其他实验问题包括位移测量技术,机器顺应性的校准以及材料各向异性的可能性(由于晶体学织构)。与有限元模型的公式化有关的问题包括域和网格的规范,本构可塑性定律的选择以及界面摩擦的模拟。还描述了使用的收敛算法。

著录项

  • 来源
    《Mechanics of materials》 |2018年第9期|118-131|共14页
  • 作者单位

    Univ Cambridge, Dept Mat Sci & Met, 27 Charles Babbage Rd, Cambridge CB3 0FS, England;

    Univ Cambridge, Dept Mat Sci & Met, 27 Charles Babbage Rd, Cambridge CB3 0FS, England;

    Univ Cambridge, Dept Mat Sci & Met, 27 Charles Babbage Rd, Cambridge CB3 0FS, England;

    Univ Cambridge, Dept Mat Sci & Met, 27 Charles Babbage Rd, Cambridge CB3 0FS, England;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Indentation; Plasticity; Constitutive law; Anisotropy; Friction;

    机译:压痕;可塑性;本构定律;各向异性;摩擦力;

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