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Anisotropic Compressive Behavior of Functionally Density Graded Aluminum Foam Prepared by Controlled Melt Foaming Process

机译:受控熔体发泡工艺制备功能密度梯度铝泡沫的各向异性压缩行为

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摘要

Aluminum foams with a functionally graded density have exhibited better impact resistance and a better energy absorbing performance than aluminum foams with a uniform density. Nevertheless, the anisotropic compression behavior caused by the graded density has scarcely been studied. In this paper, a density graded aluminum foam (FG) was prepared by a controlled foaming process. The effect of density anisotropy on the mechanical behavior of FGs was investigated under quasi-static compression and a low-velocity impact. Digital image correlation (DIC) and numerical simulation techniques were used to identify deformation mechanisms at both macro and cell levels. Results show that transverse compression on FGs lead to a higher collapse strength but also to a lower energy absorption, due to the significant decrease in densification strain and plateau stress. The deformation behavior of FGs under longitudinal compression was dominated by the progressive extension of the deformation bands. For FGs under transverse compression, the failure mode of specimens was characterized by multiple randomly distributed deformation bands. Moreover, the transverse compression caused more deformation on cells, through tearing and lateral stretching, because of the high lateral strain level in the specimens. It was concluded that the transverse compression of FGs lead to a lower plateau stress and a lower cell usage, thus resulting in a poorer energy absorption efficient; this constitutes a key factor which should be taken into consideration in structural design.
机译:具有功能梯度的铝泡沫比具有均匀密度的铝泡沫具有更好的抗冲击性和更好的能量吸收性能。然而,几乎没有研究过由梯度密度引起的各向异性压缩行为。本文通过控制发泡工艺制备了密度梯度铝泡沫(FG)。在准静态压缩和低速冲击下研究了密度各向异性对FGs力学行为的影响。使用数字图像相关性(DIC)和数值模拟技术来识别宏观和单元水平的变形机制。结果表明,由于致密化应变和平台应力的显着降低,在FG上的横向压缩会导致较高的塌陷强度,但也会导致较低的能量吸收。 FGs在纵向压缩下的变形行为主要由变形带的逐渐扩展决定。对于横向压缩的FG,试样的破坏模式以多个随机分布的变形带为特征。此外,由于样品中较高的横向应变水平,横向压缩通过撕裂和横向拉伸在细胞上引起更多变形。结论是,FGs的横向压缩导致较低的平台应力和较低的电池使用率,从而导致较差的能量吸收效率。这是结构设计中应考虑的关键因素。

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