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Linking snow microstructure to its macroscopic elastic stiffness tensor: A numerical homogenization method and its application to 3-D images from X-ray tomography

机译:将雪的微观结构与其宏观弹性刚度张量联系起来:一种数值均质化方法及其在X射线断层摄影中的3D图像中的应用

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摘要

The full 3-D macroscopic mechanical behavior of snow is investigated by solving kinematically uniform boundary condition problems derived from homogenization theories over 3-D images obtained by X-ray tomography. Snow is modeled as a porous cohesive material, and its mechanical stiffness tensor is computed within the framework of the elastic behavior of ice. The size of the optimal representative elementary volume, expressed in terms of correlation lengths, is determined through a convergence analysis of the computed effective properties. A wide range of snow densities is explored, and power laws with high regression coefficients are proposed to link the Young's and shear moduli of snow to its density. The degree of anisotropy of these properties is quantified, and Poisson's ratios are also provided. Finally, the influence of the main types of metamorphism (isothermal, temperature gradient, and wet snow metamorphism) on the elastic properties of snow and on their anisotropy is reported.
机译:通过解决运动均匀边界条件问题,研究了雪的完整3-D宏观力学行为,这些问题是根据X射线断层扫描所获得的3-D图像的均化理论得出的。雪被建模为多孔的粘性材料,其机械刚度张量是在冰的弹性行为框架内计算的。通过对计算出的有效属性进行收敛分析,可以确定以相关长度表示的最佳代表性基本体积的大小。探索了广泛的雪密度,并提出了具有高回归系数的幂定律,以将雪的杨氏模量和剪切模量与雪的密度联系起来。量化这些性质的各向异性程度,并提供泊松比。最后,报道了主要的变质类型(等温,温度梯度和湿雪变质)对雪的弹性及其各向异性的影响。

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