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Axial crush performance of polymer-aluminium alloy hybrid foam filled tubes

机译:聚合物-铝合金混合泡沫填充管的轴向挤压性能

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The paper presents the findings of a pioneering study investigating the newly developed polymer-aluminium alloy hybrid foam as fillers of thin-walled square tubes made of aluminium alloy, as an alternative to the conventional closed-cell aluminium foams. The hybrid foam filled structures were prepared by infiltrating an aluminium alloy open-cell foam with silicone or epoxy inside the thin-walled tubes. Quasi-static and dynamic crush compressive response, deformation and failure modes and energy absorption characteristics of the hybrid foam filled structures were evaluated and compared to the empty tubes and tubes filled with conventional aluminium alloy open-cell foam (with voids). Results show that the deformation of the square thin-walled is improved due to the open-cell foam filler. It stabilises the tube and prevents the unstable global bending mode or a mixed buckling mode that is considered as an inefficient mode from the crashworthiness point of view. The deformation of the hybrid foam filled tubes was accompanied with a progressive folding mode. It was also observed that the polymer fillers caused the rupture of the outer tube at the corners, which results in higher energy apportion but might limit their application. However, it was found that the most efficient hybrid foam filled structures studied, in terms of crashworthiness, were the tubes filled with the epoxy-aluminium alloy hybrid foam. An increase of 610% and 300% in energy absorption and 78% and 51% in specific energy absorption of hybrid foam filled structures with length of 25 mm and 50 mm in comparison to the empty tubes (at strain of 0.7) was noted, respectively.
机译:本文介绍了一项开拓性研究的结果,该研究调查了新开发的聚合物-铝合金混合泡沫,作为铝合金制成的薄壁方管的填料,以替代常规的闭孔铝泡沫。混合泡沫填充结构是通过在薄壁管内浸入带有硅酮或环氧树脂的铝合金开孔泡沫来制备的。对混合泡沫填充结构的准静态和动态压溃压缩响应,变形和破坏模式以及能量吸收特性进行了评估,并将其与空管和填充有常规铝合金开孔泡沫(有空隙)的管进行了比较。结果表明,开孔泡沫填充剂改善了方形薄壁的变形。它使管子稳定,并防止了不稳定的整体弯曲模式或混合弯曲模式,从耐撞性的角度来看,混合弯曲模式被认为是低效率的模式。混合泡沫填充管的变形伴随着渐进式折叠模式。还观察到,聚合物填料导致外管在拐角处破裂,这导致较高的能量分配,但可能会限制其应用。然而,发现在耐撞性方面,研究的最有效的混合泡沫填充结构是填充有环氧-铝合金混合泡沫的管。与空管(应变为0.7)相比,长度分别为25 mm和50 mm的混合泡沫填充结构的能量吸收分别增加610%和300%,比能量吸收分别增加78%和51%。 。

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