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Finite Element Modelling Of Compressive Mechanical Behaviour Of High And Low Density Polymeric Foams

机译:高低密度聚合物泡沫压缩力学行为的有限元建模

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In this work, different methodologies were studied by means of finite element modelling (FEM) with the aim of predicting the mechanical behaviour of high and low relative density (p_r) polymeric foams. Virtual structures which resemble the real ones were created by various computer-based tools. These tools were employed to make up both "unit cells" and random structural units so-called "Representative Volume Elements" (RVE). Low p_r foams are usually modelled as regular (tetrakaidecahedron) and irregular (Voronoi tessellations) 3D structures made of structural elements (beams and shells). These types of finite elements are only applicable if the ratio between longitudinal and axial dimensions exceeds a certain value and therefore, there is a practical relative density limit above which these elements are not suitable. Alternatively, virtual low ρ_r foams were created by means of cellular automata which allow a close control of bubble growth and final cell character and do not show the previous limitation. Additionally, virtual high ρ_r structures (ρ_r > 0.5) consisting of isolated bubbles or cells were created by random incorporation of cell sets whose size distributions adjust to experimentally measured ones. A random sequential adsorption algorithm (RSA) which accurately controls final thickness of ligaments between cells was programmed for this purpose. FEM results of this kind of virtual foams are compared with experimentally tested mechanical properties. Moreover, impact of structural parameters (mean cell size) on elastic modulus and compressive collapse stress is critically assessed.
机译:在这项工作中,通过有限元建模(FEM)研究了各种方法,目的是预测高和低相对密度(p_r)聚合物泡沫的机械性能。通过各种基于计算机的工具创建了类似于真实结构的虚拟结构。这些工具被用来组成“单位单元”和所谓的“代表性体积元素”(RVE)的随机结构单元。低p_r泡沫通常被建模为由结构元素(梁和壳)制成的规则(十四面体)和不规则(Voronoi镶嵌)3D结构。这些类型的有限元仅在纵向尺寸和轴向尺寸之比超过一定值时才适用,因此,存在实际的相对密度极限,在这些极限以上,这些元素是不合适的。或者,通过细胞自动机产生虚拟的低ρ_r泡沫,该泡沫可紧密控制气泡的生长和最终细胞的特性,并且没有显示以前的局限性。此外,通过随机合并尺​​寸分布调整为实验测量值的细胞组,可以创建由孤立的气泡或细胞组成的虚拟高ρ_r结构(ρ_r> 0.5)。为此目的,编写了可精确控制细胞之间韧带最终厚度的随机顺序吸附算法(RSA)。将这种虚拟泡沫的有限元结果与经过实验测试的机械性能进行比较。此外,严格评估了结构参数(平均单元大小)对弹性模量和压缩塌陷应力的影响。

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