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Optimised Experimental Characterisation of Polymeric Foam Material Using DIC and the Virtual Fields Method

机译:用DIC和虚拟场法优化高分子泡沫材料的实验表征。

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摘要

This article presents a methodology to optimise the design of a realistic mechanical test to characterise the material elastic stiffness parameters of an orthotropic PVC foam material in one single test. Two main experimental techniques were used in this study: Digital Image Correlation (DIC) and the Virtual Fields Method (VFM). The actual image recording process was mimicked by numerically generating a series of deformed synthetic images. Subsequent to this, the entire measurement and data processing procedure was simulated by processing the synthetic images using DIC and VFM algorithms. This procedure was used to estimate the uncertainty of the measurements (systematic and random errors) by including the most significant parameters of actual experiments, e.g. the geometric test configuration, the parameters of the DIC process and the noise. By using these parameters as design variables and by defining different error functions as object functions, an optimisation study was performed to minimise the uncertainty of the material parameter identification and to select the optimal test parameters. The confidence intervals of the identified parameters were predicted based on systematic and random errors obtained from the simulations. The simulated experimental results have shown that averaging multiple images can lead to a significant reduction of the random error. An experimental determination of the elastic coefficient of a PVC foam material was conducted using the optimised test parameters obtained from the numerical study. The identified stiffness values matched well with data from previous tests, but even more interesting was the fact that the experimental uncertainty intervals matched reasonably well with the predictions of the simulations, which is a highly original result and probably the main outcome of the present paper.
机译:本文介绍了一种方法,可以优化实际机械测试的设计,以在一次测试中表征正交各向异性PVC泡沫材料的材料弹性刚度参数。本研究中使用了两种主要的实验技术:数字图像关联(DIC)和虚拟场法(VFM)。通过数值生成一系列变形的合成图像来模拟实际的图像记录过程。随后,通过使用DIC和VFM算法处理合成图像来模拟整个测量和数据处理过程。通过包括实际实验中最重要的参数,例如该过程,该程序被用于估计测量的不确定性(系统误差和随机误差)。几何测试配置,DIC过程的参数和噪声。通过将这些参数用作设计变量并通过将不同的误差函数定义为目标函数,进行了优化研究,以最大程度地减少材料参数识别的不确定性并选择最佳测试参数。根据从模拟中获得的系统误差和随机误差,预测所识别参数的置信区间。仿真实验结果表明,平均多个图像可以显着降低随机误差。使用从数值研究中获得的最佳测试参数对PVC泡沫材料的弹性系数进行了实验测定。所确定的刚度值与先前测试的数据很好地匹配,但是更有趣的是,实验不确定性区间与模拟的预测相当合理地匹配,这是一个非常原始的结果,可能是本论文的主要结果。

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