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A second-order homogenization procedure for multi-scale analysis based on micropolar kinematics

机译:基于微极运动学的多尺度分析二阶均化程序

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The paper presents a higher order homogenization scheme based on non-linear micropolar kinematics representing the macroscopic variation within a representative volume element (RVE) of the material. On the microstructural level the micro-macro kinematical coupling is introduced as a second-order Taylor series expansion of the macro displacement field, and the microstructural displacement variation is gathered in a fluctuation term. This approach relates strongly to second gradient continuum formulations, presented by e.g. Kouznetsova et al. (Int. J Nuiner. Meth. Engng 2002; 54:1235-1260), thus establishing a link between second gradient and micropolar theories. The major difference of the present approach as compared to second gradient formulations is that an additional constraint is placed on the higher order deformation gradient in terms of the micropolar stretch. The driving vehicle for the derivation of the homogenized macroscopic stress measures is the Hill-Mandel condition, postulating the equivalence of microscopic and macroscopic (homogenized) virtual work. Thereby, the resulting homogenization procedure yields not only a stress tensor, conjugated to the micropolar stretch tensor, but also the couple stress tensor, conjugated to the micropolar curvature tensor. The paper is concluded by a couple of numerical examples demonstrating the size effects imposed by the homogenization of stresses based on the micropolar kinematics. Copyright (c) 2006 John Wiley & Sons, Ltd.
机译:本文提出了一种基于非线性微极运动学的高阶均化方案,该运动学代表了材料的代表性体积元素(RVE)内的宏观变化。在微观结构水平上,引入了微观宏观运动耦合,作为宏观位移场的二阶泰勒级数展开,并以波动项的形式收集了微观结构位移的变化。该方法强烈地涉及例如由图2所示的第二梯度连续谱公式。 Kouznetsova等。 (Int。J Nuiner。Meth。Engng 2002; 54:1235-1260),因此在第二梯度和微极性理论之间建立了联系。与第二梯度公式相比,本方法的主要区别在于,就微极性拉伸而言,对高阶变形梯度施加了附加约束。推导均匀的宏观应力量度的驱动工具是Hill-Mandel条件,假定微观和宏观(均质)虚拟功的等效性。因此,所得的均质化过程不仅产生与微极拉伸张量共轭的应力张量,而且还产生与微极曲率张量共轭的耦合应力张量。本文由两个数值示例得出结论,这些数值示例说明了基于微极运动学的应力均化带来的尺寸效应。版权所有(c)2006 John Wiley&Sons,Ltd.

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