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Novel design of irregular closed-cell foams structures based on spherical particle inflation and evaluation of its compressive performance

机译:基于球形颗粒膨胀的不规则闭孔泡沫结构设计及其压缩性能评价

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摘要

Due to the high degree of randomness in the microstructure of real closed-cell foams, many reported numerical models in the literature are not able to capture precisely the local morphological features found in solid foams geometry. This is still the main impediment that restricts the investigation of this novel material and motivates the development of a sophisticated 3D solid model, which describes properly the complex geometry of real closed-cell foams. In this regard, this paper presents an original approach to generate a realistic and accurate 3D computational model of irregular closed-cell foams with relative density control and detailed finite element analysis of their mechanical performance under quasi-static loading up to densification. The solid model is constructed based on spherical particles inflation simulation. It resembles the real foams in terms of local features such as cell walls irregularities and thickness variation. The modeling approach was successfully verified by comparing cell-morphological details of the generated models with those produced experimentally available in the literature and by the high-quality of obtained 3D printed models containing complex shapes and irregular cell wall thickness distribution. The evolution of spherical particles during the inflation process is analyzed based on finite element (FE) simulations. It was found that it can produce varying relative densities of foam due to the gradual decrease in the gap between the inflated particles, this makes the geometrical model of the foam suitable for studying the effect of local morphological characteristics on the mechanical performance of closed-cell foam material. To demonstrate that the compressive performance of the proposed closed-cell foam models can be controlled by relative density, 3D foam models were extracted from different inflation times and then subjected to quasi-static compression tests up to densification using the Abaqus software. The results confirm that the plateau stress can be expressed as a function of foam relative density, its accuracy is validated by comparing it to the closed-cell aluminum foam power law equation existing in the literature. The new design method offers suitable numerical models for AM technology, plenty of experimental works on closed-cell foam can be reduced for engineering applications.
机译:由于真实闭孔泡沫的微观结构具有高度的随机性,文献中许多报道的数值模型无法精确捕捉固体泡沫几何形状中发现的局部形态特征。这仍然是限制这种新型材料研究的主要障碍,并促使开发复杂的 3D 实体模型,该模型正确描述了真实闭孔泡沫的复杂几何形状。在这方面,本文提出了一种独创的方法,通过相对密度控制和对准静态载荷直至致密化作用下其力学性能的详细有限元分析,生成不规则闭孔泡沫的真实且准确的三维计算模型。基于球形颗粒膨胀模拟构建实体模型。它在局部特征方面类似于真正的泡沫,例如细胞壁的不规则性和厚度变化。通过将生成的模型的细胞形态学细节与文献中实验产生的模型进行比较,以及通过获得的包含复杂形状和不规则细胞壁厚度分布的高质量 3D 打印模型,成功地验证了建模方法。基于有限元(FE)模拟分析了球形粒子在膨胀过程中的演化规律.研究发现,由于膨胀颗粒间隙的逐渐减小,可以产生不同相对密度的泡沫,这使得泡沫的几何模型适合于研究局部形貌特征对闭孔泡沫材料力学性能的影响。为了证明所提出的闭孔泡沫模型的压缩性能可以通过相对密度来控制,从不同的充气时间提取3D泡沫模型,然后使用Abaqus软件进行准静态压缩测试直至致密化。结果证实了平台应力可以表示为泡沫相对密度的函数,并通过与文献中存在的闭孔泡沫铝幂律方程的比较验证了其准确性。新的设计方法为增材制造技术提供了合适的数值模型,可以减少大量闭孔泡沫的实验工作,用于工程应用。

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