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Modeling of Macro-deformation Behavior of Thin-Walled Aluminum Foam by Gas Injection Method

机译:气体注入法薄壁铝泡沫宏观变形行为的建模

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The favorable energy absorption characteristics of foam structures originate from their layer-by-layer deformation behavior. In this paper, the effects of cell morphology on the compressive performance of thin-walled aluminum foams were studied by a finite element method using a three-dimensional, thin-shell Kelvin tetrakaidecahedron model. Models with varying cell structure parameters were established so that the effects of relative density, cell size, cell wall thickness, and cell anisotropy on the plateau stress and energy absorption capacity of the foams could be investigated. Both the numerical deformation behavior and stress-strain curves of aluminum foams are found to have good agreement with the experimental results under quasi-static compressive loading. Moreover, the deformation behaviors of those foams with a certain anisotropy ratio are compared for different loading directions. The cell shape is a key factor affecting the plateau stress as well as the relative density.
机译:泡沫结构的有利能量吸收特性源自其层逐层变形行为。 本文采用三维薄壳开尔文四边形地板渤海书呆子模型研究了细胞形态对细胞形态对薄壁铝泡沫的压缩性能。 建立了具有不同细胞结构参数的模型,使得可以研究相对密度,细胞尺寸,细胞壁厚度和细胞各向异性对泡沫的平台应力和能量吸收能力的影响。 发现铝泡沫的数值变形行为和应力 - 应变曲线与准静态压缩负载下的实验结果具有良好的一致性。 此外,以不同的装载方向比较了那些具有某种各向异性比的泡沫的变形行为。 细胞形状是影响平台应力以及相对密度的关键因素。

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