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Parameter identification in anisotropic elastoplasticity by indentation and imprint mapping

机译:通过压痕和压印映射识别各向异性弹塑性中的参数

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Indentation tests are at present frequently employed for the identification of parameters contained in constitutive models of materials at different scales. The indentation curves (namely, the relationship between applied force and penetration depth) provide experimental data for the calibration of mechanical models through traditional semi-empirical formulae or, in recent times, through simulation of the test and inverse analysis. The main material parameters estimated in these ways are Young modulus and yield stress. A recently proposed technique combines the traditional indentation test with the mapping of the residual deformations (imprint), thus providing experimental data apt to identify isotropic material parameters in more accurate fashion arid in larger number, including Poisson's ratio, hardening coefficients, friction between the specimen and the indentation tool. In this paper, such new methodology is employed for the calibration of anisotropic material models. Axial-symmetric indenters are referred to. The mapped imprint (which, clearly, does not exhibit axial symmetry because of the specimen anisotropy) provides meaningful experimental data, additional to those deduced from the indentation curves. These curves are almost insensitive to differences of material properties along different directions. On the contrary, residual displacements reflect constitutive anisotropy and turn out to be crucial for the success of the parameter identification procedure. The classical Hill's model for anisotropic perfect elasto-plasticity is adopted herein to describe material behavior. Three-dimensional finite element simulations are performed in finite strain regime by a commercial code. Inverse analysis is carried out by a batch, deterministic approach, using conventional optimization algorithms for the minimization of the discrepancy function. Sensitivity indices are computed in order to assess the identifiability of the parameters and to provide a basis for the design of the experiments. Numerical examples are discussed apt to test the performance of the proposed methodology in terms of result accuracy and computing effort in view of industrial applications.
机译:目前,压痕测试经常用于识别不同比例的材料本构模型中包含的参数。压痕曲线(即作用力和穿透深度之间的关系)通过传统的半经验公式,或者最近通过模拟试验和反分析,为校准机械模型提供了实验数据。用这些方法估算的主要材料参数是杨氏模量和屈服应力。最近提出的一项技术将传统的压痕测试与残余变形(压印)的映射相结合,从而提供了易于以更精确的方式识别各向同性材料参数的实验数据,包括大量的泊松比,硬化系数,试样之间的摩擦力。和缩进工具。在本文中,这种新方法被用于各向异性材料模型的校准。涉及轴对称压头。除了从压痕曲线推导的数据外,映射的压印(显然由于试样的各向异性而不会表现出轴向对称性)提供了有意义的实验数据。这些曲线对沿不同方向的材料特性差异几乎不敏感。相反,残余位移反映了本构各向异性,因此对于参数识别过程的成功至关重要。本文采用各向异性各向异性弹塑性的经典希尔模型来描述材料行为。三维有限元模拟是在有限应变范围内通过商业代码执行的。通过使用常规优化算法以最小化差异函数的批量确定性方法进行逆分析。计算灵敏度指标是为了评估参数的可识别性,并为实验设计提供基础。讨论了数值示例,这些示例易于根据工业应用的结果准确性和计算能力来测试所提出方法的性能。

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