论文标题
Ogden材料通过磁共振制图,参数灵敏度和变异系统识别校准
Ogden Material Calibration via Magnetic Resonance Cartography, Parameter Sensitivity, and Variational System Identification
论文作者
论文摘要
当代物质表征技术利用变形场和平衡方程的弱形式在逆表征问题的数值解决方案过程中面临挑战。随着材料模型和描述的不同,识别参数及其相应机制的方法也必须如此。广泛使用的Ogden材料模型可以由相同数学形式的选定术语组成,该术语列出了同等表示,可解释性和稳定性的挑战。对于任何材料模型的系统识别,强大的技术对于评估和改善实验设计也很重要,除了它们对远期计算的中心地位。使用我们最近开发的磁共振制图(MR-U)技术在每个样本$> 20,000 $点上获得的完全3D位移场,我们利用PDE限制的优化作为材料材料参数的变异系统鉴定的基础。我们合并了统计F检验,以维持代表性的简约。我们将新的局部变形分解分解为双轴和单轴拉伸状态的混合物,我们根据分析灵敏度度量评估实验,并讨论对实验设计的影响。
Contemporary material characterisation techniques that leverage deformation fields and the weak form of the equilibrium equations face challenges in the numerical solution procedure of the inverse characterisation problem. As material models and descriptions differ, so too must the approaches for identifying parameters and their corresponding mechanisms. The widely-used Ogden material model can be comprised of a chosen number of terms of the same mathematical form, which presents challenges of parsimonious representation, interpretability, and stability. Robust techniques for system identification of any material model are important to assess and improve experimental design, in addition to their centrality to forward computations. Using fully 3D displacement fields acquired in silicone elastomers with our recently-developed magnetic resonance cartography (MR-u) technique on the order of $>20,000$ points per sample, we leverage PDE-constrained optimisation as the basis of variational system identification of our material parameters. We incorporate the statistical F-test to maintain parsimony of representation. Using a new, local deformation decomposition locally into mixtures of biaxial and uniaxial tensile states, we evaluate experiments based on an analytical sensitivity metric, and discuss the implications for experimental design.