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Experimental identification of the material constitutive equation by means of forced sinusoidal excitation measurements

机译:强制正弦励磁测量材料本构型方程的实验鉴定

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Experimental measurements of forced sinusoidal excitation and response are used to identify the material model equation of homogeneous uniform beam specimens in flexural conditions. The contribution of the measurement system structure to the specimen frequency response function is estimated to be used for calibration, and the stress-strain relationship of the beam specimen is estimated by means of an optimization algorithm. A Standard Linear Solid material model is considered, so that a rational polynomial function, in the frequency domain, can be used for both the instrument frame and the material model. A physically sound model for the instrument frame is obtained by eliminating unphysical and unstable poles from the rational function model. Such model is then used for the identification of the beam material model parameters in order to filter the instrument contribution to the beam measurements. The use of different polynomial function bases such as Forsythe, Legendre and Chebyshev and its influence on the accuracy of the model results is investigated.
机译:强制正弦激励和响应的实验测量用于识别弯曲条件下均匀均匀梁样本的材料模型方程。估计测量系统结构对样本频率响应函数的贡献估计用于校准,并且通过优化算法估计光束样本的应力 - 应变关系。考虑标准线性固体材料模型,使得频域中的合理多项式功能可用于仪器框架和材料模型。通过从Rational函数模型中消除不受神经和不稳定的极点来获得用于仪器框架的物理声音模型。然后,这种模型用于识别光束材料模型参数,以便将仪器贡献过滤到光束测量。研究了不同多项式函数基础,如锋利,legendre和chebyshev及其对模型结果的准确性的影响。

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