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A Fourier-series-based virtual fields method for the identification of three-dimensional stiffness distributions and its application to incompressible materials

机译:基于傅里叶级数的虚拟场三维刚度分布识别方法及其在不可压缩材料中的应用

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摘要

We present an inverse method to identify the spatially varying stiffness distributions in 3 dimensions. The method is an extension of the classical Virtual Fields Method—a numerical technique that exploits information from full-field deformation measurements to deduce unknown material properties—in the spatial frequency domain, which we name the Fourier-series-based virtual fields method (F-VFM). Three-dimensional stiffness distributions, parameterised by a Fourier series expansion, are recovered after a single matrix inversion. A numerically efficient version of the technique is developed, based on the Fast Fourier Transform. The proposed F-VFM is also adapted to deal with the challenging situation of limited or even non-existent knowledge of boundary conditions. The three-dimensional F-VFM is validated with both numerical and experimental data. The latter came from a phase contrast magnetic resonance imaging experiment containing material with Poisson's ratio close to 0.5; such a case requires a slightly different interpretation of the F-VFM equations, to enable the application of the technique to incompressible materials.
机译:我们提出了一种逆向方法来识别3维空间变化的刚度分布。该方法是传统虚拟场方法(一种利用全场形变测量信息来推断未知材料特性的数值技术)在空间频域中的扩展,我们将其称为基于傅里叶级数的虚拟场方法(F -VFM)。在一次矩阵求逆后,可以恢复由傅立叶级数展开参数化的三维刚度分布。基于快速傅立叶变换,开发了该技术的数字有效版本。拟议的F-VFM还适用于应对边界条件了解有限甚至根本不存在的挑战性情况。三维F-VFM已通过数值和实验数据验证。后者来自相衬磁共振成像实验,其中包含泊松比接近0.5的材料。在这种情况下,需要对F-VFM方程进行稍有不同的解释,才能使该技术应用于不可压缩的材料。

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