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Identification of elasto-viscoplastic material parameters by indentation testing and combined finite element modelling and numerical optimization

机译:通过压痕测试,有限元建模和数值优化相结合的方式识别弹黏塑性材料参数

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Using nanoindentation experiments, the material parameters of an elasto-viscoplastic material model with non-linear isotropic and kinematic hardening are determined by minimizing the least-squares difference between experimental data and results from a finite element model of the indentation test. The objective function is minimized by a gradient-based numerical optimization algorithm. The gradient of the objective function with respect to the material parameters is calculated using the direct differentiation method. The parameter coupling occurring in the indentation test is systematically analyzed, and virtual indentation tests are used to assess the reliability of the material parameter identification method. Experimental nanoindentation curves obtained on an aluminium alloy and annealed copper are analyzed. Objective functions consisting of load versus displacement-into-surface curves are used. The efficiency of the use of residual imprint data resulting from nanoindentation testing in the objective function is investigated in order to assess their appropriateness at such small scales.
机译:使用纳米压痕实验,通过最小化实验数据与压痕测试有限元模型的结果之间的最小二乘方差,可以确定具有非线性各向同性和运动学硬化性的弹粘塑性材料模型的材料参数。通过基于梯度的数值优化算法将目标函数最小化。使用直接微分法计算目标函数相对于材料参数的梯度。系统地分析了压痕测试中发生的参数耦合,并使用虚拟压痕测试来评估材料参数识别方法的可靠性。分析了在铝合金和退火铜上获得的实验纳米压痕曲线。使用由载荷与表面位移曲线组成的目标函数。研究了在目标函数中使用纳米压痕测试产生的残留印记数据的效率,以便在如此小的规模下评估其适用性。

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